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1 model-made data
1. данные полученные по модели2. данные полученные на модели -
2 model-made data
данные, полученные по моделиБольшой англо-русский и русско-английский словарь > model-made data
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3 model-made data
1) Математика: данные, полученные с помощью модели2) Вычислительная техника: данные, полученные на модели, полученные по модели3) Контроль качества: полученные на модели -
4 model-made data
данные, полученные по моделиEnglish-Russian dictionary of computer science and programming > model-made data
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5 model-made data
данные, полученные на модели -
6 model-made data
данные, полученные на моделиEnglish-Russian dictionary of computer science > model-made data
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7 model-made data
данные, полученные на моделиThe English-Russian dictionary on reliability and quality control > model-made data
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8 data
pl. от datumданные; информация; сведения- absolute data
- actual data
- adjusted data
- aggregated data
- alphanumeric data
- alphameric data
- alphabetic data
- analog data
- anomalous data
- applied data
- arrayed data
- asynchronous data
- attribute data
- autocorrelated data
- available data
- background data
- bad data
- biased data
- binary data
- binary raster data
- bipolar-valued data
- bipolar data
- bit strring data
- blocked data
- Boolean data
- built-in data
- business data
- byte-width data
- cache data
- cached data
- canned data
- carry-over data
- chain data
- character string data
- classified data
- clean data
- clear data
- coded data
- common data
- compacted data
- compatible data
- comprehensive data
- computer usage data
- computer-generated data
- concatenated data
- confidential data
- constitutional data
- constructed test data
- constructed data
- contiguous data
- continuous data
- continuous tone raster data
- control data
- coordinate data
- correction data
- critical data
- cumulative data
- current data
- data received into the keyboard
- database data
- debugging data
- decimal data
- derived data
- descriptive data
- destination data
- digital data
- digital-voice data
- digitized data
- dirty data
- discrete data
- disembodied data
- dispersed data
- documentary data
- downloaded data
- duplicate data
- dynamic data
- encoded data
- encrypted data
- engineering data
- error data
- evaluation data
- event-level data
- event data
- expect data
- expedited data
- false data
- field data
- field-performance data
- file data
- filed data
- fixed-point data
- flagged data
- floating-point data
- formatted data
- go-no-go data
- GPS data
- graphic data
- hierarchical data
- historical data
- Hollerith data
- host data
- housekeeping data
- image data
- immediate data
- imperfect data
- improper data
- incoming data
- incomplete data
- incremental data
- indexed data
- indicative data
- information data
- initial data
- input data
- integer data
- integrated data
- interactive data
- intermediate control data
- intermediate data
- intersection data
- invisible data
- job data
- key-punched data
- label data
- language data
- latched data
- line data
- list-structured data
- live data - logged data
- long constrained data
- lost data
- low delay data
- low-activity data
- machine-readable data
- major control data
- management data
- mask data
- masked data
- mass data
- master data
- meaningful data
- meaning data
- meaningless data
- mechanized data
- minor control data
- misleading data
- missing data
- model-made data
- multidimensional data
- multiple data
- multiplexed data
- multiuser accessible data
- N-bit data
- nonformatted data
- non-numeric data
- normal data
- null data
- numerical character data
- numeric character data
- numerical data
- numeric data
- observed data
- off-chip data
- on-line data
- operational data
- outgoing data
- outlying data
- output data
- packed data
- parallel data
- pattern data
- photo frame data
- pixel data
- pointer data
- pooled data
- poor data
- preformatted data
- primary data
- private data
- problem data
- public data
- punched data
- random test data
- ranked data
- rating data
- raw data
- real-time data
- recovery data
- reduced data
- referenced data
- refined data
- rejected data
- relative data
- relevant data
- reliability data
- reliable data
- remote data
- replicated data
- representative data
- run data
- sampled data
- schematic data
- scratch data
- secondary data
- sensitive data
- sensory data
- serial data
- shared data
- simulation data
- software problem data
- source data
- specified data
- speech data
- stale data
- stand-alone data
- starting data
- statement label data
- static data
- status data
- stored data
- string data
- structured data
- suspect data
- symptom data
- synthetic data
- system control data
- system output data
- tabular data
- tagged data
- task data
- telecommunications data
- test data
- time-referenced data
- timing data
- token data
- tooling data
- transaction data
- transcriptive data
- transient data
- transparent data
- trouble-shooting data
- true data
- tuple-structured data
- uncompatible data
- unconstrained delay data
- under voice data
- unformatted data
- ungrouped data
- unpacked data
- untagged data
- updatable data
- user data
- valid data
- variable data
- vectorized data
- video data data
- virtual data
- visible data
- warranty data
- wavefront data
- zero dataEnglish-Russian dictionary of computer science and programming > data
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9 model
ˈmɔdl
1. сущ.
1) а) модель;
макет (уменьшенная копия чего-л.) a ship model ≈ модель корабля Syn: small-scale reproduction б) модель, шаблон clay models for a statue ≈ модели из глины для статуи
2) модель (идеализированное или упрощенное описание чего-л.) mathematical model ≈ математическая модель model of economy ≈ модель экономики production model ≈ модель производства
3) а) образец, эталон to pose as a model ≈ выдавать за образец to serve as a model ≈ служить образцом to take as a model ≈ брать за образец a model of politeness ≈ образец вежливости role model ≈ образец для подражания Syn: standard
1., ideal
1. б) биол. модель (организм, которому подражают в мимикрии)
4) а) натурщик, натурщица artist's model ≈ натурщица художника photographer's model ≈ модель фотографа б) манекенщик, манекенщица в) эвф. проститутка
5) тип, марка, модель Model T ≈ первые марки автомобилей, выпущенных фирмой Форда Syn: make, design
1.
2. гл.
1) лепить to model a cat in clay ≈ лепить кошку из глины Syn: fashion
2.
2) моделировать( систему и т. п.) to model the circulation in the atmosphere ≈ моделировать движение воздушных масс to model the urban system ≈ моделировать городскую систему
3) а) создавать, конструировать (на основе каких-л. принципов и т. п.) б) делать по образцу( чего-л.;
after, on) a sports car modeled on a racing car ≈ спортивный автомобиль, сделанный по образцу гоночного Syn: pattern after
4) а) позировать, работать натурщиком, натурщицей to model for an artist ≈ позировать художнику б) демонстрировать модели (о манекенщицах)
3. прил.
1) образцовый, примерный As a girl she has been a model pupil. ≈ В детстве она была примерной ученицей. Hospital staff say he is a model patient. ≈ Весь персонал больницы утверждает, что он идеальный пациент.
2) являющийся моделью the collecting of model soldiers ≈ коллекционирование солдатиков, являющихся копией настоящих солдат модель, макет - working * действующая модель - a * of a monument макет памятника - plane * модель самолета модель, образец;
слепок, шаблон - constructed after * сконструировано по образцу /по шаблону/ - he made each box on the * of the first он сделал все коробки по образцу первой модель, фасон - the latest Paris *s новейшие /последние/ парижские модели - * frock модель платья образец - a * of virtue образец добродетели - on the * of smb., smth. по образцу /по примеру/ кого-л., чего-л. - to take smb. as one's * взять кого-л. за образец - * behaviour образцовое /примерное/ поведение - * farm образцовая ферма - * husband идеальный муж модель, тип, марка конструкции - the latest *s of cars последние модели автомобилей - a sports * спортивная модель (автомобиля) (диалектизм) точная копия - she is a perfect /the very/ * of her mother она точная копия своей матери натурщик;
натурщица - I worked as a photographer's * меня снимали для журнала, я работала фотомоделью манекенщица (для демонстрации моделей одежды) ;
манекенщик (тж. male *) манекен (эвфмеизм) проститутка, приходящая по вызову делать, создавать модель или макет;
моделировать;
лепить - to * ships делать модели кораблей - to * dresses работать модельером, создавать модели /фасоны/ платьев - to * smth. in clay вылепить что-л. из глины - he *led her head in wax он сделал восковую модель ее головы (техническое) формовать делать, создавать по образцу;
следовать образцу - his work is *led on /upon, after/ the Spanish в своих произведениях он использовал испанские образцы;
в своих произведениях он следовал /подражал/ испанским образцам - to * oneself on /upon, after/ smb. подражать кому-л., брать пример с кого-л. (в своем поведении) - he *led his behaviour on that of his father в своем поведении он подражал отцу /следовал примеру отца/ быть натурщиком, натурщицей, живой моделью быть манекенщицей - she *s for a living она работает манекенщицей, она зарабатывает на жизнь, демонстрируя модели одежды - she *led dresses она демонстрировала платья abstract ~ абстрактная модель abstract ~ building вчт. абстрактное моделирование allocation ~ модель распределения analytical ~ аналитическая модель associative ~ ассоциативная модель autonomous ~ автономная модель autoregressive ~ авторегрессионная модель backlogging ~ модель с задалживанием роста заказов battle ~ модель боя behavioral ~ модель поведения binomial ~ биномиальная модель binomial ~ биномиальное распределение clay-clay ~ жесткая модель closed ~ замкнутая модель coalition ~ модель коалиции cobweb ~ паутинообразная модель cognitive ~ когнитивная модель communication ~ модель общения computational ~ вычислительная модель computer ~ машинная модель conceptual ~ концептуальная модель cyclic queueing ~ вчт. циклическая модель массового обслуживания data ~ вчт. модель данных decision ~ модель принятия решений decision-theory ~ модель выбора решений decision-theory ~ модель принятия решений double-risk ~ модель с двойным риском dynamic ~ динамическая модель dynamic programming ~ вчт. модель динамического программирования econometric ~ эконометрическая модель entity-relationship ~ модель типа объект-отношение equilibrium ~ модель равновесия estimation ~ модель оценивания explaining ~ поясняющая модель finite-horizon ~ модель с конечным интервалом fixed-horizon ~ модель с постоянным интервалом fixed-service-level ~ модель с фиксированным уровнем обслуживания formal ~ формальная модель game ~ игровая модель game-theory ~ теоретико-игровая модель general duel ~ общая модель дуэли generalized ~ обобщенная модель generic ~ типовая модель global ~ глобальная модель imaging ~ модель изображений interindustry programming ~ вчт. межотраслевая модель программирования interruption ~ модель с возможностью прерывания обслуживания knowledge ~ вчт. модель знаний labyrinth ~ лабиринтная модель language ~ модель языка learning ~ модель обучения linear ~ линейная модель linear programming ~ модель линейного программирования linear regressive ~ линейный регрессионная модель linguistic ~ лингвистическая модель logical ~ логическая модель logical-linguistic ~ логико-лингвистическая модель macrosectoral ~ макроотраслевая модель many-server ~ вчт. многоканальная модель master-workers ~ модель хозяин-работники matrix ~ матричная модель model быть натурщиком, натурщицей, живой моделью, манекенщицей ~ живая модель (в магазине одежды) ~ макет ~ манекен ~ моделировать;
лепить ~ модель, макет;
шаблон ~ модель ~ натурщик;
натурщица ~ образец, эталон ~ образец ~ attr. образцовый, примерный ~ оформлять ~ примерный, типовой( о конвенции, уставе и т.д.) ~ создавать по образцу (чего-л.;
after, on) ;
to model oneself ((up) on smb.) брать (кого-л.) за образец ~ тип ~ разг. точная копия ~ тех. формировать ~ шаблон ~ создавать по образцу (чего-л.;
after, on) ;
to model oneself ((up) on smb.) брать (кого-л.) за образец moving-average ~ модель скользящего среднего multichannel priority ~ вчт. многоканальная модель с приоритетами multifactor ~ многофакторная модель multiple ~ многоуровневая модель multistation queueing ~ вчт. многоканальная модель обслуживания network ~ сетевая модель no-backlog ~ модель без задалживания заказов no-queue ~ модель без образования очереди non-poisson ~ непуассоновская модель one-factor ~ однофакторная модель one-period ~ однопериодная модель open ~ открытая модель open ~ разомкнутая модель operations research ~ модель исследования операций phenomenological ~ феноменологическая модель pictorial ~ графическая модель pilot ~ опытный образец pilot: ~ plant опытный завод, опытная установка;
pilot model опытная модель poisson ~ пуассоновская модель predicitive ~ прогнозирующая модель preference ~ модель предпочтений priority ~ модель с приоритетами probability ~ вероятностная модель probability ~ стохастическая модель production ~ производственная модель prognostic ~ прогностическая модель queueing ~ модель массового обслуживания queueing ~ модель очереди random ~ вероятностная модель random ~ стохастическая модель reduced ~ упрощенная модель regression ~ регрессионная модель relational ~ реляционная модель scaling ~ шкальная модель security ~ модель механизма защиты semi-poisson ~ полупуассоновская модель shortest-route ~ модель выбора кратчайшего пути sign ~ знаковая модель simplex ~ симплексная модель simulation ~ имитационная модель single-channel ~ одноканальная модель single-period ~ однопериодная модель single-phase ~ однофазовая модель single-server ~ одноканальная модель singular ~ одноуровневая модель software ~ вчт. программная модель solid ~ объемная модель sophisticated ~ усложненная модель standard ~ типовая модель static equilibrium ~ модель статического равновесия static inventory ~ статическая модель управления запасами static ~ статическая модель station-to-station ~ многошаговая модель stochastic ~ вероятностная модель teaching ~ учебная модель (машины, оборудования) three-dimensional ~ трехмерная модель transportation ~ транспортная задача transshipment ~ модель перевозок с промежуточными пунктами trend-free ~ модель с отсутствием тренда trial ~ испытательный образец trial ~ пробный образец two-echelon ~ двухступенчатая модель two-state ~ модель с двумя состояниями user ~ модель пользователя waiting line ~ модель очереди wire-frame ~ каркасная модель world decision ~ всеобщая модель решений world ~ модель мира -
10 modular data center
модульный центр обработки данных (ЦОД)
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[Интент]Параллельные тексты EN-RU
[ http://dcnt.ru/?p=9299#more-9299]
Data Centers are a hot topic these days. No matter where you look, this once obscure aspect of infrastructure is getting a lot of attention. For years, there have been cost pressures on IT operations and this, when the need for modern capacity is greater than ever, has thrust data centers into the spotlight. Server and rack density continues to rise, placing DC professionals and businesses in tighter and tougher situations while they struggle to manage their IT environments. And now hyper-scale cloud infrastructure is taking traditional technologies to limits never explored before and focusing the imagination of the IT industry on new possibilities.
В настоящее время центры обработки данных являются широко обсуждаемой темой. Куда ни посмотришь, этот некогда малоизвестный аспект инфраструктуры привлекает все больше внимания. Годами ИТ-отделы испытывали нехватку средств и это выдвинуло ЦОДы в центр внимания, в то время, когда необходимость в современных ЦОДах стала как никогда высокой. Плотность серверов и стоек продолжают расти, все больше усложняя ситуацию для специалистов в области охлаждения и организаций в их попытках управлять своими ИТ-средами. И теперь гипермасштабируемая облачная инфраструктура подвергает традиционные технологии невиданным ранее нагрузкам, и заставляет ИТ-индустрию искать новые возможности.
At Microsoft, we have focused a lot of thought and research around how to best operate and maintain our global infrastructure and we want to share those learnings. While obviously there are some aspects that we keep to ourselves, we have shared how we operate facilities daily, our technologies and methodologies, and, most importantly, how we monitor and manage our facilities. Whether it’s speaking at industry events, inviting customers to our “Microsoft data center conferences” held in our data centers, or through other media like blogging and white papers, we believe sharing best practices is paramount and will drive the industry forward. So in that vein, we have some interesting news to share.
В компании MicroSoft уделяют большое внимание изучению наилучших методов эксплуатации и технического обслуживания своей глобальной инфраструктуры и делятся результатами своих исследований. И хотя мы, конечно, не раскрываем некоторые аспекты своих исследований, мы делимся повседневным опытом эксплуатации дата-центров, своими технологиями и методологиями и, что важнее всего, методами контроля и управления своими объектами. Будь то доклады на отраслевых событиях, приглашение клиентов на наши конференции, которые посвящены центрам обработки данных MicroSoft, и проводятся в этих самых дата-центрах, или использование других средств, например, блоги и спецификации, мы уверены, что обмен передовым опытом имеет первостепенное значение и будет продвигать отрасль вперед.
Today we are sharing our Generation 4 Modular Data Center plan. This is our vision and will be the foundation of our cloud data center infrastructure in the next five years. We believe it is one of the most revolutionary changes to happen to data centers in the last 30 years. Joining me, in writing this blog are Daniel Costello, my director of Data Center Research and Engineering and Christian Belady, principal power and cooling architect. I feel their voices will add significant value to driving understanding around the many benefits included in this new design paradigm.
Сейчас мы хотим поделиться своим планом модульного дата-центра четвертого поколения. Это наше видение и оно будет основанием для инфраструктуры наших облачных дата-центров в ближайшие пять лет. Мы считаем, что это одно из самых революционных изменений в дата-центрах за последние 30 лет. Вместе со мной в написании этого блога участвовали Дэниел Костелло, директор по исследованиям и инжинирингу дата-центров, и Кристиан Белади, главный архитектор систем энергоснабжения и охлаждения. Мне кажется, что их авторитет придаст больше веса большому количеству преимуществ, включенных в эту новую парадигму проектирования.
Our “Gen 4” modular data centers will take the flexibility of containerized servers—like those in our Chicago data center—and apply it across the entire facility. So what do we mean by modular? Think of it like “building blocks”, where the data center will be composed of modular units of prefabricated mechanical, electrical, security components, etc., in addition to containerized servers.
Was there a key driver for the Generation 4 Data Center?Наши модульные дата-центры “Gen 4” будут гибкими с контейнерами серверов – как серверы в нашем чикагском дата-центре. И гибкость будет применяться ко всему ЦОД. Итак, что мы подразумеваем под модульностью? Мы думаем о ней как о “строительных блоках”, где дата-центр будет состоять из модульных блоков изготовленных в заводских условиях электрических систем и систем охлаждения, а также систем безопасности и т.п., в дополнение к контейнеризованным серверам.
Был ли ключевой стимул для разработки дата-центра четвертого поколения?
If we were to summarize the promise of our Gen 4 design into a single sentence it would be something like this: “A highly modular, scalable, efficient, just-in-time data center capacity program that can be delivered anywhere in the world very quickly and cheaply, while allowing for continued growth as required.” Sounds too good to be true, doesn’t it? Well, keep in mind that these concepts have been in initial development and prototyping for over a year and are based on cumulative knowledge of previous facility generations and the advances we have made since we began our investments in earnest on this new design.Если бы нам нужно было обобщить достоинства нашего проекта Gen 4 в одном предложении, это выглядело бы следующим образом: “Центр обработки данных с высоким уровнем модульности, расширяемости, и энергетической эффективности, а также возможностью постоянного расширения, в случае необходимости, который можно очень быстро и дешево развертывать в любом месте мира”. Звучит слишком хорошо для того чтобы быть правдой, не так ли? Ну, не забывайте, что эти концепции находились в процессе начальной разработки и создания опытного образца в течение более одного года и основываются на опыте, накопленном в ходе развития предыдущих поколений ЦОД, а также успехах, сделанных нами со времени, когда мы начали вкладывать серьезные средства в этот новый проект.
One of the biggest challenges we’ve had at Microsoft is something Mike likes to call the ‘Goldilock’s Problem’. In a nutshell, the problem can be stated as:
The worst thing we can do in delivering facilities for the business is not have enough capacity online, thus limiting the growth of our products and services.Одну из самых больших проблем, с которыми приходилось сталкиваться Майкрософт, Майк любит называть ‘Проблемой Лютика’. Вкратце, эту проблему можно выразить следующим образом:
Самое худшее, что может быть при строительстве ЦОД для бизнеса, это не располагать достаточными производственными мощностями, и тем самым ограничивать рост наших продуктов и сервисов.The second worst thing we can do in delivering facilities for the business is to have too much capacity online.
А вторым самым худшим моментом в этой сфере может слишком большое количество производственных мощностей.
This has led to a focus on smart, intelligent growth for the business — refining our overall demand picture. It can’t be too hot. It can’t be too cold. It has to be ‘Just Right!’ The capital dollars of investment are too large to make without long term planning. As we struggled to master these interesting challenges, we had to ensure that our technological plan also included solutions for the business and operational challenges we faced as well.
So let’s take a high level look at our Generation 4 designЭто заставило нас сосредоточиваться на интеллектуальном росте для бизнеса — refining our overall demand picture. Это не должно быть слишком горячим. И это не должно быть слишком холодным. Это должно быть ‘как раз, таким как надо!’ Нельзя делать такие большие капиталовложения без долгосрочного планирования. Пока мы старались решить эти интересные проблемы, мы должны были гарантировать, что наш технологический план будет также включать решения для коммерческих и эксплуатационных проблем, с которыми нам также приходилось сталкиваться.
Давайте рассмотрим наш проект дата-центра четвертого поколенияAre you ready for some great visuals? Check out this video at Soapbox. Click here for the Microsoft 4th Gen Video.
It’s a concept video that came out of my Data Center Research and Engineering team, under Daniel Costello, that will give you a view into what we think is the future.
From a configuration, construct-ability and time to market perspective, our primary goals and objectives are to modularize the whole data center. Not just the server side (like the Chicago facility), but the mechanical and electrical space as well. This means using the same kind of parts in pre-manufactured modules, the ability to use containers, skids, or rack-based deployments and the ability to tailor the Redundancy and Reliability requirements to the application at a very specific level.
Посмотрите это видео, перейдите по ссылке для просмотра видео о Microsoft 4th Gen:
Это концептуальное видео, созданное командой отдела Data Center Research and Engineering, возглавляемого Дэниелом Костелло, которое даст вам наше представление о будущем.
С точки зрения конфигурации, строительной технологичности и времени вывода на рынок, нашими главными целями и задачами агрегатирование всего дата-центра. Не только серверную часть, как дата-центр в Чикаго, но также системы охлаждения и электрические системы. Это означает применение деталей одного типа в сборных модулях, возможность использования контейнеров, салазок, или стоечных систем, а также возможность подстраивать требования избыточности и надежности для данного приложения на очень специфичном уровне.Our goals from a cost perspective were simple in concept but tough to deliver. First and foremost, we had to reduce the capital cost per critical Mega Watt by the class of use. Some applications can run with N-level redundancy in the infrastructure, others require a little more infrastructure for support. These different classes of infrastructure requirements meant that optimizing for all cost classes was paramount. At Microsoft, we are not a one trick pony and have many Online products and services (240+) that require different levels of operational support. We understand that and ensured that we addressed it in our design which will allow us to reduce capital costs by 20%-40% or greater depending upon class.
Нашими целями в области затрат были концептуально простыми, но трудно реализуемыми. В первую очередь мы должны были снизить капитальные затраты в пересчете на один мегаватт, в зависимости от класса резервирования. Некоторые приложения могут вполне работать на базе инфраструктуры с резервированием на уровне N, то есть без резервирования, а для работы других приложений требуется больше инфраструктуры. Эти разные классы требований инфраструктуры подразумевали, что оптимизация всех классов затрат имеет преобладающее значение. В Майкрософт мы не ограничиваемся одним решением и располагаем большим количеством интерактивных продуктов и сервисов (240+), которым требуются разные уровни эксплуатационной поддержки. Мы понимаем это, и учитываем это в своем проекте, который позволит нам сокращать капитальные затраты на 20%-40% или более в зависимости от класса.For example, non-critical or geo redundant applications have low hardware reliability requirements on a location basis. As a result, Gen 4 can be configured to provide stripped down, low-cost infrastructure with little or no redundancy and/or temperature control. Let’s say an Online service team decides that due to the dramatically lower cost, they will simply use uncontrolled outside air with temperatures ranging 10-35 C and 20-80% RH. The reality is we are already spec-ing this for all of our servers today and working with server vendors to broaden that range even further as Gen 4 becomes a reality. For this class of infrastructure, we eliminate generators, chillers, UPSs, and possibly lower costs relative to traditional infrastructure.
Например, некритичные или гео-избыточные системы имеют низкие требования к аппаратной надежности на основе местоположения. В результате этого, Gen 4 можно конфигурировать для упрощенной, недорогой инфраструктуры с низким уровнем (или вообще без резервирования) резервирования и / или температурного контроля. Скажем, команда интерактивного сервиса решает, что, в связи с намного меньшими затратами, они будут просто использовать некондиционированный наружный воздух с температурой 10-35°C и влажностью 20-80% RH. В реальности мы уже сегодня предъявляем эти требования к своим серверам и работаем с поставщиками серверов над еще большим расширением диапазона температур, так как наш модуль и подход Gen 4 становится реальностью. Для подобного класса инфраструктуры мы удаляем генераторы, чиллеры, ИБП, и, возможно, будем предлагать более низкие затраты, по сравнению с традиционной инфраструктурой.
Applications that demand higher level of redundancy or temperature control will use configurations of Gen 4 to meet those needs, however, they will also cost more (but still less than traditional data centers). We see this cost difference driving engineering behavioral change in that we predict more applications will drive towards Geo redundancy to lower costs.
Системы, которым требуется более высокий уровень резервирования или температурного контроля, будут использовать конфигурации Gen 4, отвечающие этим требованиям, однако, они будут также стоить больше. Но все равно они будут стоить меньше, чем традиционные дата-центры. Мы предвидим, что эти различия в затратах будут вызывать изменения в методах инжиниринга, и по нашим прогнозам, это будет выражаться в переходе все большего числа систем на гео-избыточность и меньшие затраты.
Another cool thing about Gen 4 is that it allows us to deploy capacity when our demand dictates it. Once finalized, we will no longer need to make large upfront investments. Imagine driving capital costs more closely in-line with actual demand, thus greatly reducing time-to-market and adding the capacity Online inherent in the design. Also reduced is the amount of construction labor required to put these “building blocks” together. Since the entire platform requires pre-manufacture of its core components, on-site construction costs are lowered. This allows us to maximize our return on invested capital.
Еще одно достоинство Gen 4 состоит в том, что он позволяет нам разворачивать дополнительные мощности, когда нам это необходимо. Как только мы закончим проект, нам больше не нужно будет делать большие начальные капиталовложения. Представьте себе возможность более точного согласования капитальных затрат с реальными требованиями, и тем самым значительного снижения времени вывода на рынок и интерактивного добавления мощностей, предусматриваемого проектом. Также снижен объем строительных работ, требуемых для сборки этих “строительных блоков”. Поскольку вся платформа требует предварительного изготовления ее базовых компонентов, затраты на сборку также снижены. Это позволит нам увеличить до максимума окупаемость своих капиталовложений.
Мы все подвергаем сомнениюIn our design process, we questioned everything. You may notice there is no roof and some might be uncomfortable with this. We explored the need of one and throughout our research we got some surprising (positive) results that showed one wasn’t needed.
В своем процессе проектирования мы все подвергаем сомнению. Вы, наверное, обратили внимание на отсутствие крыши, и некоторым специалистам это могло не понравиться. Мы изучили необходимость в крыше и в ходе своих исследований получили удивительные результаты, которые показали, что крыша не нужна.
Серийное производство дата центров
In short, we are striving to bring Henry Ford’s Model T factory to the data center. http://en.wikipedia.org/wiki/Henry_Ford#Model_T. Gen 4 will move data centers from a custom design and build model to a commoditized manufacturing approach. We intend to have our components built in factories and then assemble them in one location (the data center site) very quickly. Think about how a computer, car or plane is built today. Components are manufactured by different companies all over the world to a predefined spec and then integrated in one location based on demands and feature requirements. And just like Henry Ford’s assembly line drove the cost of building and the time-to-market down dramatically for the automobile industry, we expect Gen 4 to do the same for data centers. Everything will be pre-manufactured and assembled on the pad.Мы хотим применить модель автомобильной фабрики Генри Форда к дата-центру. Проект Gen 4 будет способствовать переходу от модели специализированного проектирования и строительства к товарно-производственному, серийному подходу. Мы намерены изготавливать свои компоненты на заводах, а затем очень быстро собирать их в одном месте, в месте строительства дата-центра. Подумайте о том, как сегодня изготавливается компьютер, автомобиль или самолет. Компоненты изготавливаются по заранее определенным спецификациям разными компаниями во всем мире, затем собираются в одном месте на основе спроса и требуемых характеристик. И точно так же как сборочный конвейер Генри Форда привел к значительному уменьшению затрат на производство и времени вывода на рынок в автомобильной промышленности, мы надеемся, что Gen 4 сделает то же самое для дата-центров. Все будет предварительно изготавливаться и собираться на месте.
Невероятно энергоэффективный ЦОД
And did we mention that this platform will be, overall, incredibly energy efficient? From a total energy perspective not only will we have remarkable PUE values, but the total cost of energy going into the facility will be greatly reduced as well. How much energy goes into making concrete? Will we need as much of it? How much energy goes into the fuel of the construction vehicles? This will also be greatly reduced! A key driver is our goal to achieve an average PUE at or below 1.125 by 2012 across our data centers. More than that, we are on a mission to reduce the overall amount of copper and water used in these facilities. We believe these will be the next areas of industry attention when and if the energy problem is solved. So we are asking today…“how can we build a data center with less building”?А мы упоминали, что эта платформа будет, в общем, невероятно энергоэффективной? С точки зрения общей энергии, мы получим не только поразительные значения PUE, но общая стоимость энергии, затраченной на объект будет также значительно снижена. Сколько энергии идет на производство бетона? Нам нужно будет столько энергии? Сколько энергии идет на питание инженерных строительных машин? Это тоже будет значительно снижено! Главным стимулом является достижение среднего PUE не больше 1.125 для всех наших дата-центров к 2012 году. Более того, у нас есть задача сокращения общего количества меди и воды в дата-центрах. Мы думаем, что эти задачи станут следующей заботой отрасли после того как будет решена энергетическая проблема. Итак, сегодня мы спрашиваем себя…“как можно построить дата-центр с меньшим объемом строительных работ”?
Строительство дата центров без чиллеровWe have talked openly and publicly about building chiller-less data centers and running our facilities using aggressive outside economization. Our sincerest hope is that Gen 4 will completely eliminate the use of water. Today’s data centers use massive amounts of water and we see water as the next scarce resource and have decided to take a proactive stance on making water conservation part of our plan.
Мы открыто и публично говорили о строительстве дата-центров без чиллеров и активном использовании в наших центрах обработки данных технологий свободного охлаждения или фрикулинга. Мы искренне надеемся, что Gen 4 позволит полностью отказаться от использования воды. Современные дата-центры расходуют большие объемы воды и так как мы считаем воду следующим редким ресурсом, мы решили принять упреждающие меры и включить экономию воды в свой план.
By sharing this with the industry, we believe everyone can benefit from our methodology. While this concept and approach may be intimidating (or downright frightening) to some in the industry, disclosure ultimately is better for all of us.
Делясь этим опытом с отраслью, мы считаем, что каждый сможет извлечь выгоду из нашей методологией. Хотя эта концепция и подход могут показаться пугающими (или откровенно страшными) для некоторых отраслевых специалистов, раскрывая свои планы мы, в конечном счете, делаем лучше для всех нас.
Gen 4 design (even more than just containers), could reduce the ‘religious’ debates in our industry. With the central spine infrastructure in place, containers or pre-manufactured server halls can be either AC or DC, air-side economized or water-side economized, or not economized at all (though the sanity of that might be questioned). Gen 4 will allow us to decommission, repair and upgrade quickly because everything is modular. No longer will we be governed by the initial decisions made when constructing the facility. We will have almost unlimited use and re-use of the facility and site. We will also be able to use power in an ultra-fluid fashion moving load from critical to non-critical as use and capacity requirements dictate.
Проект Gen 4 позволит уменьшить ‘религиозные’ споры в нашей отрасли. Располагая базовой инфраструктурой, контейнеры или сборные серверные могут оборудоваться системами переменного или постоянного тока, воздушными или водяными экономайзерами, или вообще не использовать экономайзеры. Хотя можно подвергать сомнению разумность такого решения. Gen 4 позволит нам быстро выполнять работы по выводу из эксплуатации, ремонту и модернизации, поскольку все будет модульным. Мы больше не будем руководствоваться начальными решениями, принятыми во время строительства дата-центра. Мы сможем использовать этот дата-центр и инфраструктуру в течение почти неограниченного периода времени. Мы также сможем применять сверхгибкие методы использования электрической энергии, переводя оборудование в режимы критической или некритической нагрузки в соответствии с требуемой мощностью.
Gen 4 – это стандартная платформаFinally, we believe this is a big game changer. Gen 4 will provide a standard platform that our industry can innovate around. For example, all modules in our Gen 4 will have common interfaces clearly defined by our specs and any vendor that meets these specifications will be able to plug into our infrastructure. Whether you are a computer vendor, UPS vendor, generator vendor, etc., you will be able to plug and play into our infrastructure. This means we can also source anyone, anywhere on the globe to minimize costs and maximize performance. We want to help motivate the industry to further innovate—with innovations from which everyone can reap the benefits.
Наконец, мы уверены, что это будет фактором, который значительно изменит ситуацию. Gen 4 будет представлять собой стандартную платформу, которую отрасль сможет обновлять. Например, все модули в нашем Gen 4 будут иметь общепринятые интерфейсы, четко определяемые нашими спецификациями, и оборудование любого поставщика, которое отвечает этим спецификациям можно будет включать в нашу инфраструктуру. Независимо от того производите вы компьютеры, ИБП, генераторы и т.п., вы сможете включать свое оборудование нашу инфраструктуру. Это означает, что мы также сможем обеспечивать всех, в любом месте земного шара, тем самым сводя до минимума затраты и максимальной увеличивая производительность. Мы хотим создать в отрасли мотивацию для дальнейших инноваций – инноваций, от которых каждый сможет получать выгоду.
Главные характеристики дата-центров четвертого поколения Gen4To summarize, the key characteristics of our Generation 4 data centers are:
Scalable
Plug-and-play spine infrastructure
Factory pre-assembled: Pre-Assembled Containers (PACs) & Pre-Manufactured Buildings (PMBs)
Rapid deployment
De-mountable
Reduce TTM
Reduced construction
Sustainable measuresНиже приведены главные характеристики дата-центров четвертого поколения Gen 4:
Расширяемость;
Готовая к использованию базовая инфраструктура;
Изготовление в заводских условиях: сборные контейнеры (PAC) и сборные здания (PMB);
Быстрота развертывания;
Возможность демонтажа;
Снижение времени вывода на рынок (TTM);
Сокращение сроков строительства;
Экологичность;Map applications to DC Class
We hope you join us on this incredible journey of change and innovation!
Long hours of research and engineering time are invested into this process. There are still some long days and nights ahead, but the vision is clear. Rest assured however, that we as refine Generation 4, the team will soon be looking to Generation 5 (even if it is a bit farther out). There is always room to get better.
Использование систем электропитания постоянного тока.
Мы надеемся, что вы присоединитесь к нам в этом невероятном путешествии по миру изменений и инноваций!
На этот проект уже потрачены долгие часы исследований и проектирования. И еще предстоит потратить много дней и ночей, но мы имеем четкое представление о конечной цели. Однако будьте уверены, что как только мы доведем до конца проект модульного дата-центра четвертого поколения, мы вскоре начнем думать о проекте дата-центра пятого поколения. Всегда есть возможность для улучшений.So if you happen to come across Goldilocks in the forest, and you are curious as to why she is smiling you will know that she feels very good about getting very close to ‘JUST RIGHT’.
Generations of Evolution – some background on our data center designsТак что, если вы встретите в лесу девочку по имени Лютик, и вам станет любопытно, почему она улыбается, вы будете знать, что она очень довольна тем, что очень близко подошла к ‘ОПИМАЛЬНОМУ РЕШЕНИЮ’.
Поколения эволюции – история развития наших дата-центровWe thought you might be interested in understanding what happened in the first three generations of our data center designs. When Ray Ozzie wrote his Software plus Services memo it posed a very interesting challenge to us. The winds of change were at ‘tornado’ proportions. That “plus Services” tag had some significant (and unstated) challenges inherent to it. The first was that Microsoft was going to evolve even further into an operations company. While we had been running large scale Internet services since 1995, this development lead us to an entirely new level. Additionally, these “services” would span across both Internet and Enterprise businesses. To those of you who have to operate “stuff”, you know that these are two very different worlds in operational models and challenges. It also meant that, to achieve the same level of reliability and performance required our infrastructure was going to have to scale globally and in a significant way.
Мы подумали, что может быть вам будет интересно узнать историю первых трех поколений наших центров обработки данных. Когда Рэй Оззи написал свою памятную записку Software plus Services, он поставил перед нами очень интересную задачу. Ветра перемен двигались с ураганной скоростью. Это окончание “plus Services” скрывало в себе какие-то значительные и неопределенные задачи. Первая заключалась в том, что Майкрософт собиралась в еще большей степени стать операционной компанией. Несмотря на то, что мы управляли большими интернет-сервисами, начиная с 1995 г., эта разработка подняла нас на абсолютно новый уровень. Кроме того, эти “сервисы” охватывали интернет-компании и корпорации. Тем, кому приходится всем этим управлять, известно, что есть два очень разных мира в области операционных моделей и задач. Это также означало, что для достижения такого же уровня надежности и производительности требовалось, чтобы наша инфраструктура располагала значительными возможностями расширения в глобальных масштабах.
It was that intense atmosphere of change that we first started re-evaluating data center technology and processes in general and our ideas began to reach farther than what was accepted by the industry at large. This was the era of Generation 1. As we look at where most of the world’s data centers are today (and where our facilities were), it represented all the known learning and design requirements that had been in place since IBM built the first purpose-built computer room. These facilities focused more around uptime, reliability and redundancy. Big infrastructure was held accountable to solve all potential environmental shortfalls. This is where the majority of infrastructure in the industry still is today.
Именно в этой атмосфере серьезных изменений мы впервые начали переоценку ЦОД-технологий и технологий вообще, и наши идеи начали выходить за пределы общепринятых в отрасли представлений. Это была эпоха ЦОД первого поколения. Когда мы узнали, где сегодня располагается большинство мировых дата-центров и где находятся наши предприятия, это представляло весь опыт и навыки проектирования, накопленные со времени, когда IBM построила первую серверную. В этих ЦОД больше внимания уделялось бесперебойной работе, надежности и резервированию. Большая инфраструктура была призвана решать все потенциальные экологические проблемы. Сегодня большая часть инфраструктуры все еще находится на этом этапе своего развития.
We soon realized that traditional data centers were quickly becoming outdated. They were not keeping up with the demands of what was happening technologically and environmentally. That’s when we kicked off our Generation 2 design. Gen 2 facilities started taking into account sustainability, energy efficiency, and really looking at the total cost of energy and operations.
Очень быстро мы поняли, что стандартные дата-центры очень быстро становятся устаревшими. Они не поспевали за темпами изменений технологических и экологических требований. Именно тогда мы стали разрабатывать ЦОД второго поколения. В этих дата-центрах Gen 2 стали принимать во внимание такие факторы как устойчивое развитие, энергетическая эффективность, а также общие энергетические и эксплуатационные.
No longer did we view data centers just for the upfront capital costs, but we took a hard look at the facility over the course of its life. Our Quincy, Washington and San Antonio, Texas facilities are examples of our Gen 2 data centers where we explored and implemented new ways to lessen the impact on the environment. These facilities are considered two leading industry examples, based on their energy efficiency and ability to run and operate at new levels of scale and performance by leveraging clean hydro power (Quincy) and recycled waste water (San Antonio) to cool the facility during peak cooling months.
Мы больше не рассматривали дата-центры только с точки зрения начальных капитальных затрат, а внимательно следили за работой ЦОД на протяжении его срока службы. Наши объекты в Куинси, Вашингтоне, и Сан-Антонио, Техас, являются образцами наших ЦОД второго поколения, в которых мы изучали и применяли на практике новые способы снижения воздействия на окружающую среду. Эти объекты считаются двумя ведущими отраслевыми примерами, исходя из их энергетической эффективности и способности работать на новых уровнях производительности, основанных на использовании чистой энергии воды (Куинси) и рециклирования отработанной воды (Сан-Антонио) для охлаждения объекта в самых жарких месяцах.
As we were delivering our Gen 2 facilities into steel and concrete, our Generation 3 facilities were rapidly driving the evolution of the program. The key concepts for our Gen 3 design are increased modularity and greater concentration around energy efficiency and scale. The Gen 3 facility will be best represented by the Chicago, Illinois facility currently under construction. This facility will seem very foreign compared to the traditional data center concepts most of the industry is comfortable with. In fact, if you ever sit around in our container hanger in Chicago it will look incredibly different from a traditional raised-floor data center. We anticipate this modularization will drive huge efficiencies in terms of cost and operations for our business. We will also introduce significant changes in the environmental systems used to run our facilities. These concepts and processes (where applicable) will help us gain even greater efficiencies in our existing footprint, allowing us to further maximize infrastructure investments.
Так как наши ЦОД второго поколения строились из стали и бетона, наши центры обработки данных третьего поколения начали их быстро вытеснять. Главными концептуальными особенностями ЦОД третьего поколения Gen 3 являются повышенная модульность и большее внимание к энергетической эффективности и масштабированию. Дата-центры третьего поколения лучше всего представлены объектом, который в настоящее время строится в Чикаго, Иллинойс. Этот ЦОД будет выглядеть очень необычно, по сравнению с общепринятыми в отрасли представлениями о дата-центре. Действительно, если вам когда-либо удастся побывать в нашем контейнерном ангаре в Чикаго, он покажется вам совершенно непохожим на обычный дата-центр с фальшполом. Мы предполагаем, что этот модульный подход будет способствовать значительному повышению эффективности нашего бизнеса в отношении затрат и операций. Мы также внесем существенные изменения в климатические системы, используемые в наших ЦОД. Эти концепции и технологии, если применимо, позволят нам добиться еще большей эффективности наших существующих дата-центров, и тем самым еще больше увеличивать капиталовложения в инфраструктуру.
This is definitely a journey, not a destination industry. In fact, our Generation 4 design has been under heavy engineering for viability and cost for over a year. While the demand of our commercial growth required us to make investments as we grew, we treated each step in the learning as a process for further innovation in data centers. The design for our future Gen 4 facilities enabled us to make visionary advances that addressed the challenges of building, running, and operating facilities all in one concerted effort.
Это определенно путешествие, а не конечный пункт назначения. На самом деле, наш проект ЦОД четвертого поколения подвергался серьезным испытаниям на жизнеспособность и затраты на протяжении целого года. Хотя необходимость в коммерческом росте требовала от нас постоянных капиталовложений, мы рассматривали каждый этап своего развития как шаг к будущим инновациям в области дата-центров. Проект наших будущих ЦОД четвертого поколения Gen 4 позволил нам делать фантастические предположения, которые касались задач строительства, управления и эксплуатации объектов как единого упорядоченного процесса.
Тематики
Синонимы
EN
Англо-русский словарь нормативно-технической терминологии > modular data center
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11 system
1) система2) установка; устройство•- 2D design system
- 2-D draughting system
- 2D milling CAM system
- 3 nonsimultaneous axes control system
- 3D CAD system
- 3D design system
- 3D milling CAM system
- 3-D surface-modeling system
- 3-D system
- abrasive waterjet cutting system
- absolute control system
- absolute dimension measuring system
- accident-protection system
- accountancy system
- accounting data system
- ACO system
- acoustic feedback control system
- acquisition system
- active enclosure system
- adaptable system
- adaptive CNC system
- adaptive control constraint system
- adaptive control system
- adaptive pulsing system
- adaptive robot system
- add-on NC programming system
- administrative information data system
- administrative information system
- ADR system
- advanced command data system
- advanced data analysis system
- advanced data display system
- advanced display system
- advanced integrated data system
- advanced interactive debugging system
- advanced management information system
- advisory system
- AGV system
- air flotation system
- air-bearing system
- air-cooling system
- air-delivery system
- air-gaging system
- airlock system
- air-oil mist lubrication system
- air-plasma arc-profiling system
- air-purge system
- alarm system
- all-enveloping guard system
- analog computing system
- analog recording system
- angstrom-positioning system
- antideflection system
- antilock brake system
- antisag system
- application-specific system
- APT generating expert system
- Archimedes system
- array system
- AS/RS system
- assembly management system
- assembly system
- attitude display system
- autolube system
- automated communications and messages processing system
- automated design and optimization of control system
- automated design system
- automated digital design system
- automated industrial management system
- automated information data system
- automated information dissemination system
- automated information retrieval system
- automated inventory distribution system
- automated machining system
- automated management information system
- automated management system
- automated measuring system
- automated parts input-output system
- automated reliability and maintenance management system
- automated storage control system
- automatic alignment-and-centering system
- automatic call distribution system
- automatic CAM system
- automatic chuck-changing system
- automatic data acquisition system
- automatic data distribution system
- automatic data system
- automatic diagnostic-and-recovery system
- automatic display plotting system
- automatic distributive numerical control system
- automatic fixturing system
- automatic gaging-and-compensating system
- automatic measurement-and-compensation system
- automatic message accounting system
- automatic message distribution system
- automatic pallet storage/retrieval system
- automatic program transfer system
- automatic record evaluation system
- automatic telemetry system
- automatic test analysis system
- automatic test system
- automatic testing, evaluating and reporting system
- automatic tool cassette changer system
- automatic tool retraction system
- automatic tool retraction/correction/reentry system
- automatic tool wear/tool broken sensing system
- automatically taught system
- automation system
- autonomous system
- autopatch system
- AWS system
- axis drive system
- axis motor system
- axis-stopping system
- backlash-free friction system
- back-to-back system
- balance system
- balanced system of forces
- balanced system
- bar feed system
- bar pulling system
- bar pusher system
- barring coding system
- base coordinate system
- base data system
- base file system
- base operating information system
- basic disk operating system
- basic hole system
- basic input/output system
- basic NC system
- basic programming system
- basic shaft system
- batching system
- batch-machining system
- battery system
- BCC management information system
- beam delivery system
- belt turnover system
- belt twist system
- binary system
- binary vision system
- biped robotic system
- block-tool system
- block-type tool change system
- bonded stores system
- boring system
- bought-in control system
- brake system
- branch information system
- breakaway system
- breathing system
- broad system of ordering
- BTA deep-hole-drilling system
- BTA-style deep-hole-drilling system
- bug-free system
- building block system
- bulk system
- business information system
- buy-and-plug-in system
- C/C system
- cable and hose carrying system
- CAD access system
- CAD system
- CAD/CAM system
- CAD/CAM/CAE and product data management system
- CAD/CAM/CAE system
- CAD/CAPP/CAM system
- CADAR system
- CAD-integrating system
- CAD-only system
- CAE system
- CAE/CAD/CAM system
- CAG system
- CAM system
- cam-and-lever system
- capacitance-based measuring system
- CAPP system
- capture system
- carrierband system
- cart/pallet transfer system
- Cartesian coordinate system
- cassette jaw-change system
- cell control system
- cell management system
- cell-type system
- cellular manufacturing system
- central analog data distributing and controlling system
- central automatic message accounting system
- central storage system
- centralized control system
- centralized coolant and extractor system
- centralized swarf conveying system
- centralized swarf removal system
- chain conveyor system
- check system
- checking system
- checkout system
- chiller system
- chip conveyor system
- chip guard system
- chip-evacuation system
- chuck/chuck jaw changing system
- chucking system
- chuck-jaw system
- chuck-loading system
- CIM system
- circular monitoring system
- circular part-processing system
- circulating lubrication system
- circulating oil system
- circulation system
- clamping system
- closed cooling system
- closed loop control system
- closed loop machine control system
- closed loop size control system
- closed loop system
- closed-proprietary system
- CM system
- CNC hardware system
- CNC machine tool system
- CNC programming system
- CNC system
- CNC transfer system
- CNC-ACC system
- CNC-control system
- coherent system of units
- collecting system
- collet pad top jaw system
- combined cooling system
- combined production system
- command-line NC system
- commercial vision system
- communication system
- companion system
- comprehensive power measurement system
- computer analysis and design system
- computer automation real-time operating system
- computer data communication system
- computer NC system
- computer system
- computer vision system
- computer-aided design support system
- computer-aided dispatch system
- computer-aided gaging system
- computer-aided programming system
- computer-aided telemetry system
- computer-aided test system
- computer-assisted command system
- computer-assisted message processing system
- computer-assisted microfilm retrieval system
- computer-assisted operation sequence planning system
- computer-automated machine-tool system
- computer-automated test system
- computer-based management system
- computer-based message system
- computer-controlled materials-handling system
- computer-controlled system
- computer-coordinated measuring system
- computer-directed swing-arm tool-changing system
- computer-driven control system
- computer-hosted manufacturing system
- computer-integrated manufacturing system
- computer-integrated system
- computerized information retrieval system
- computerized machine control system
- computerized manufacturing system
- computerized numerical control system
- computerized production control system
- computerized shopfloor data collection system
- computer-oriented production management system
- computer-oriented system
- computing system
- concurrent force system
- conductor system
- conservative system
- constant delivery system
- constant volume system
- constant-contact scanning system
- constraint satisfaction system
- continuous feedback control system
- continuous flow system
- continuous-path CNC system
- continuous-path control system
- contouring control system
- contouring system
- controlled path system
- controlling system
- conventional ACC system
- conversational analysis and drafting system
- conveying system
- conveyor system
- conveyoring system
- conveyorized work-handling system
- coolant clarification system
- coolant laundering system
- coolant mist system
- coolant recirculating system
- coolant recovery system
- coolant recycling system
- coolant supply system
- coolant-circulating system
- coolant-thru-body system
- cooling system
- coordinate drive system
- coordinate system
- coprocessor board system
- copymill control system
- corporate information and office system
- coupling system
- CPS system
- CRT control system
- CRT system
- customer-oriented system
- customized FMS control system
- cut-piece transfer system
- cycloidal tooth system
- data base management system
- data communication system
- data control system
- data input management system
- data management system
- data origination system
- data processing system
- data retrieval system
- data transfer system
- datum system for geometrical tolerancing
- datum system
- DDM system
- decentralized DNC system
- decision enabling system
- decision support system
- dedicated production system
- deep-hole-drilling system
- defect-free machining system
- delivery system
- demand pull flexible system
- demand push flexible system
- departmental management system
- descaling system
- design coordinate system
- design support system
- design-automation system
- design-for-manufacturing system
- design-with-feature system
- desk-top publishing system
- deterministic system
- dexel-based system
- diagnostic communication control system
- diagnostic computer control system
- dialog system
- diamond-lapping system
- digital readout system
- digitizing system
- digitizing/data capture system
- dimensional verification system
- direct impingement starting system
- direct lubrication system
- direct NC system
- discrete-continuous system
- dispatcher system
- distributed computer system
- distributed mass-spring system
- distributed microprocessor system
- distributed processing system
- distributed quality system
- distributed system
- distributive numerical control system
- DNC flexible machining system
- DNC machine control system
- DNC machine tool control system
- DNC system
- DNC/FM system
- document processing system
- document retrieval system
- document search system
- domain-expert system
- Doppler system
- DOS CAM system
- double tube system
- dowel pin system
- DRO system
- drop-feed-lubrication system
- DTP system
- dual laser optical system
- dual laser referencing system
- dual system
- dual-beam LDDM system
- dual-pallet shuttle system
- dual-shaft electric propulsion system
- dynamic beam focusing laser system
- dynamic data system
- dynamic mapping system
- early warning system
- eddy current damper system
- edge-sensing system
- edge-type positioning system
- eight-station pallet system
- electrical contact tracing system
- electrofluidic control system
- emergency protection system
- enclosure system
- encoder checking system
- endpoint locating system
- energy-adaptive system
- energy-saving drive system
- engine starting system
- entry-level NC system
- environmental control system
- equivalent rigid link system
- equivalent systems of forces
- ESD system
- estimating system
- example-driven system
- expert control system
- expert process planning system
- expert system
- external box system
- extractor system
- fact retrieval system
- factory automation system
- fault detection system
- fault-signal system
- FBG system
- feasibility routing system
- feature-based CAM system
- feature-based system
- feed system
- feedback control system
- feedback gaging system
- feedback position control system
- feedback system
- feed-drive system
- feedforward compensatory control system
- feed-only AC system
- feed-overriding system
- FFS system
- file control system
- finite capacity scheduling system
- fixed coordinate system
- fixed-feature NC system
- fixed-rail system
- fixture design system
- fixture system
- fixturing system
- flanged pipe system
- flexible assembly system
- flexible automated manufacturing system
- flexible automation system
- flexible computer-controlled robotic system
- flexible fabricating system
- flexible fixturing system
- flexible handling system
- flexible laser optical system
- flexible laser system
- flexible lathe system
- flexible machine system
- flexible machining center system
- flexible machining system
- flexible manufacturing system
- flexible NC system
- flexible press system
- flexible tooling system
- flexible transfer system
- flexible turning system
- flood coolant system
- flow-line production system
- flow-type manufacturing system
- fluid management system
- fluid power system
- flush-type cooling system
- fly system
- FMS operating system
- FMS/CAD/CAM system
- FMS-type production system
- force measurement system
- force sensory system
- force system
- force-sensing system
- forecasting system
- four-station pallet system
- four-tier quality system
- FROG navigation system
- FROG system
- full-blown system
- fully specified system
- gage system
- gaging computer system
- gaging-and-compensating system
- gantry loading system
- gantry-based turning system
- gantry-style motion system
- gas-turbine starting system
- gating system
- gear roller system
- gear system
- gear testing system
- general information retrieval system
- generative planning system
- generic control system
- generic messaging system
- generic system
- glass fiber system
- glazing system
- goal-seeking system
- graphic numerical control system
- graphic processing system
- graphics system
- graphics-oriented system
- grating measuring system
- gravity oil system
- gray scale imaging system
- grinder vision system
- group control system
- guarding system
- guidance system
- guiding system
- handling system
- handwriting-input system
- hard-automated system
- hardware NC system
- hardware support system
- head change system
- head changer system
- head-changing flexible manufacturing system
- help system
- hierarchical coding system
- hierarchical control system
- hierarchical information control system
- high-noise-immunity system
- high-rise system
- high-speed positioning system
- high-speed-processor control system
- high-volume system
- Hirth gear-tooth system
- holding system
- holding tool system
- hole system
- holonomic system
- host computer-assisted programming system
- host distributive numerical control system
- hybrid computing system
- hydraulic oil system
- hydraulic system
- hydraulic-circuit system
- hypertext system
- ID system
- IDNC system
- illumination system
- image detection system
- image processing system
- imaging system
- IMC system
- immersion-washing system
- inconsistent system of equations
- incremental measuring system
- index system
- indirect lubrication system
- individual lubrication system
- inductive telemetry system
- inductively guided cart system
- industrial vision system
- in-feed system
- inference system
- in-floor chip-disposal system
- information infrastructure system
- information logical system
- information processing system
- information storage and retrieval system
- information system
- information-gathering system
- information-management system
- information-sharing system
- infrared imaging system
- infrared system
- in-house minicomputer system
- in-house system
- inlet control system
- in-process gaging system
- in-process sensing system
- in-process storage system
- insert-selection system
- instrumentation system
- insulating system
- integral movement monitoring system
- integrated CAD/CAPP/CAM system
- integrated CAM system
- integrated circuit numerical control system
- integrated computer system
- integrated information system
- integrated machine system
- integrated machining system
- integrated manufacturing and assembly system
- integrated manufacturing system
- integrated NC machine system
- integrated production system
- integrated sensor system
- intelligent control system
- interactive control system
- interactive graphics processing system
- interactive manufacturing control system
- interconnection system
- interdepartmental communication system
- interferometer measuring system
- interlocking system
- interrupt-driven system
- inventory-management system
- involute tooth system
- IR fault-signal system
- IR system
- ISO system of limits and tolerances
- isolated word recognition system
- jig boring measuring system
- job shop-type flexible system
- joint-actuation system
- just-in-time production system
- kanban pull system
- kinetic control system
- kitting system
- knowledge base management system
- knowledge system
- knowledge-based information system
- knowledge-based system
- krypton laser system
- labeling system
- labor-intensive system
- language-based NC system
- laser beam orientation system
- laser beam positioning system
- laser calibration system
- laser combination energy system
- laser digitizing system
- laser driving system
- laser full automated system
- laser inspection system
- laser interferometer measuring system
- laser machining system
- laser metalworking system
- laser micrometer system
- laser monitoring system
- laser mount system
- laser optical transformation system
- laser pulse power system
- laser pump system
- laser referencing system
- laser thread measurement system
- laser transducer system
- laser-cutting system
- laser-gaging system
- layered control system
- LDDM system
- lead screw drive system
- learning system
- library reference system
- library system
- light guide system
- light recognition system
- line motion control system
- line motion system
- line path system
- linear index system
- linear system of constant coefficients
- linear time invariant system
- linear time-varying system
- linear-encoder-equipped system
- LMFC system
- load/unload system
- loading robot system
- load-monitoring system
- local communications system
- logistics system
- look-up table system
- low-loss optical system
- low-volume lubricant delivery system
- lube system
- lubrication system with continuous delivery
- lubrication system with cyclic delivery
- lubrication system with performance control
- lubrication system without performance control
- lubrication system
- M system
- machine control system
- machine coordinate system
- machine health-monitoring system
- machine management system
- machine surveillance system
- machine tool capability-conditioning system
- machine tool system
- machine vision system
- machine/control system
- machine/tool/workpiece system
- machine-flexible system
- machine-zero reference system
- machining-cell system
- magnetic control system
- magnetic shaft suspension system
- main control system
- maintenance tracking system
- make-up system
- management control system
- management information system
- management system
- management-and-manufacturing system
- managerial reporting system
- man-computer system
- man-machine system
- man-plus-machine system
- manual data input system
- manual programming system
- manufacturing execution system
- manufacturing optimization system
- manufacturing software system
- manufacturing system
- many-degrees-of-freedom system
- many-variable system
- mass-elastic system
- master manufacturing control system
- master-slave control system
- material flow system
- material movement system
- material storage system
- materials-handling control system
- materials-handling system
- matrix array system
- matrix-type system
- MDI contouring control system
- MDI control system
- MDI NC system
- mean line system
- measurement/inspection system
- measuring coordinate system
- measuring system
- measuring/compensation system
- mechanical interface coordinate system
- memory NC system
- memory system
- menu drive system
- menu system
- menu-driven programming system
- metalforming production system with robots
- metalworking laser system
- metamorphic system
- metareasoning system
- metering system
- metrology system
- MIC system
- micro CAD/CAM programming system
- microadjustment system
- microchip-managed control system
- microdispensing system
- microintegrated system
- microload system
- micropackaged distributed system
- microprocessor based system
- microprocessor CNC system
- microprocessor system
- microprocessor-development system
- microstep control system
- microwave drill detection system
- milling CAM system
- milling system
- minicomputer-based numerical control system
- minicomputer-based system
- minicomputer-based test system
- miniload automated storage and retrieval system
- miniload system
- minimal constraint system
- minimum phase shift system
- mist-cooling system
- mixed forging-machining system
- mobility system
- model reference adaptive system
- moderately sized manufacturing system
- modular clamping system
- modular component tooling system
- modular fixture system
- modular holding system
- modular system
- modular tooling system
- modular work holding system
- monitoring system
- monorail material handling system
- motor position sensing system
- mounting system
- MPM system
- MRC system
- MRP system
- MS-DOS system
- multiaxis laser system
- multimachine system
- multimedia system
- multinetwork system
- multipallet system
- multiple computer system
- multiple laser technology system
- multiple pallet changer system
- multiple pallet handling system
- multiple parts feeding system
- multiple sensory system
- multiple spindle head handling-and-changing system
- multiple system of indexing
- multiple-gun spraying system
- multipoint lubrication system
- multipoint network control system
- multiprocessing system
- multiprocessor NC system
- multiprocessor system
- multiproduct manufacturing system
- multiprofile tool system
- multiprogramming system
- multirobot system
- multisensor system
- multiserver queueing system
- multistage system
- multitasking control system
- multiterminal system
- multiuser system
- multivendor information system
- multiwindowing software system
- Nagare system
- narrowly defined expert system
- national information system
- navigation system
- NC contouring system
- NC machine system
- NC part-programming system
- NC system
- NC tooling system
- NC/TP system
- nesting system
- network computer system
- network switching system
- network system
- noise diagnostic system
- noncircular copy-turning system
- noncompensated system
- noncontact laser marking system
- noncontact microwave system
- nonexpert system
- non-NC system
- numerical computer control system
- numerical contour control system
- numerical control system
- numerically controlled tool point system
- object-oriented system
- office system
- office-based programming system
- off-line adviser-type expert system
- off-line programming system
- off-line system
- off-the-shelf system
- oil mist system
- oil scavenge system
- oil system
- oil wash system
- oil-recirculating system
- oligarchical manufacturing system
- OLP system
- one man/one machine system
- one man-one operation-one job system
- one-machine flexible system
- one-piece tape spar-measuring system
- one-shot lubrication system
- on-line information system
- on-line process system
- on-line retrieval system
- on-line system
- on-line tool control system
- on-machine gaging system
- on-machine probing system
- on-off control system
- open architecture system
- open cooling system
- open system
- open-front system
- open-loop control system
- operating system
- operational system
- operator guidance system
- operator-controlled NC system
- optical detection system
- optical laser ranging system
- optical MAP system
- optical measurement/inspection system
- optical recognition system
- optical system for laser processing
- optical tracer backup system
- optical transmission system
- opti-feed system
- optimal-position control system
- order-driven system
- order-entry system
- order-picking system
- oscillating system
- oscillatory system
- out-feed system
- output collecting system
- overall system
- p.-t.-p. NC system
- package confinement system
- paging system
- pallet conveyor system
- pallet gripper system
- pallet ID system
- pallet storage system
- pallet storage/changer system
- pallet/platen transfer system
- pallet/robot flexible-machining system
- pallet-based materials handling system
- pallet-based system
- pallet-changer system
- pallet-coding system
- pallet-handling system
- palletized tool magazine system
- pallet-loading system
- pallet-moving system
- pallet-shuttle change system
- pallet-transfer system
- pallet-transport system
- paperless NC system
- parallel force system
- parallel lubrication system
- parametric CNC system
- part flow system
- part handling-and-storage system
- part program-editing system
- part queue system
- part-conveying system
- partial laser system
- part-programming system
- part-retrieval system
- passively mode-locked laser system
- path control system of a machine
- path control system
- pattern recognition system
- pattern tracing system
- pattern-directed system
- PC system
- PC-based CAD system
- PC-based vision system
- pendant-mounted CNC system
- perceptual system
- permanent electro system
- personal computer-based robotic vision system
- phase switching control system
- photogrammetric vision system
- photooptic tracing system
- photooptical tracing system
- piece rate system
- plane system of forces
- planner-oriented system
- plant-integration system
- platen system
- platform-independent CAM system
- playback system
- plugboard control system
- plugboard programming system
- point-to-point system
- popular laser system
- position control system
- positioning control system
- postprocess inspection system
- postprocess system
- postprocess-feedback gaging system
- potentiometer-setting system
- power generating system
- power system
- powered clamping system
- powered track system
- powerful robot system
- precision positioning system
- predictive machinability system
- predictive maintenance system
- pre-emptive system
- pregaging system
- preload system
- preset tooling system
- presetting system
- prismatic flexible manufacturing system
- prismatic machining system
- probe communication system
- problem-oriented information system
- process planning system
- process-flexible system
- production control system
- production expert system
- production-monitoring system
- productions system
- product-testing system
- programmable automation system
- programmable control system
- programmable logic control system
- programmable power monitoring system
- programmed sequence control system
- programming system
- proof-of-concept system
- proprietary NC system
- propulsion system
- propulsive system
- protection system
- prototype system
- prototyping system
- pull system of production
- pull system
- punch tape NC system
- purpose-made materials feeding system
- push system
- qualitative system
- quality control system
- quality system
- quantity produced systems
- question-and-answer system
- question-answering system
- queuing system
- quick-change system
- quick-change workpiece-fixturing system
- quick-change-cutter system
- rack system
- rack-picking system
- rail-borne robotic handling system
- rail-guided transport system
- random mission system
- random mix system
- random order system
- ranging system
- readout system
- ready-to-go system
- real-time vision system
- recirculation system
- rectangular coordinate system
- rectangular triordinate system
- reeving system
- reference retrieval system
- reference system
- reflecting high-power beam optical system
- register system
- registration system
- relay ladder logic system
- reporting system
- reprographic system
- resolver system
- restraint system
- RETIC system
- retrieval system
- retrofit system
- return spring system
- RGV pallet delivery system
- rigid track workpiece transport system
- rigid transfer system
- robot control system
- robot gantry storage-and-retrieval system
- robot learning system
- robot parts-handling system
- robot system
- robot teaching system
- robot tool changing system
- robot-based turning system
- robotic system
- robotic vision system
- robotics CAD system
- robotized metalforming system
- robot-like inspection system
- robot-measuring system
- rod memory system
- roller system
- roll-generating system
- rotary transfer system
- rotary-type tool-mounting system
- rotational system
- routing-flexible system
- rule-based expert system
- running fail-safe system
- running system
- run-time system
- safety actuation system
- safety system
- scale back system
- seam tracking laser processing system
- seam-tracking system
- security system
- selective assembly system
- selective control system
- self-adapting system
- self-contained starting system
- self-contained system
- self-monitoring measuring system
- self-optimizing adaptive control system
- self-programming NC system
- self-teaching system
- self-test system
- sensing system
- sensor system
- sensor-based system
- sensory control system
- sensory feedback system
- sensory interactive system
- sensory-processing system
- sentence recognition system
- sequencing control system
- sequential control system
- series lubrication system
- service system
- servo control system
- servo drive system
- servo positioning system
- servo transducer system
- servo-controlled blade-feed-pressure system
- setting system
- SFP system
- shaft system
- shared tools system
- shopfloor communication message system
- shopfloor part-programming system
- shopfloor programming system
- shopfloor-programming control system
- short-closed oil system
- shuttle car system
- shuttle system
- shuttle-type container system
- side-loading pallet system
- sign system
- signature-analysis system
- silhouetting system
- single system
- single-board computer system
- single-cell system
- single-line lubrication system
- single-point lubrication system
- single-stage system
- single-tube system
- single-unit machining system
- single-variable system
- sinking system
- six-station pallet system
- size-monitoring system
- skidless system
- skid-type system
- small knowledge system
- small scale system
- small-batch manufacturing system
- sociotechnical system
- software-based system
- software-operating system
- solid model CAD system
- solid modeling system
- solids-based system
- sonic digitizing system
- space-monitoring sensor system
- special-purpose CNC system
- special-purpose material handling system
- speech-understanding system
- spindle airblast system
- spindle-probe system
- splash lubrication system
- split-type of tooling system
- spray lubrication system
- sprocket-chain system
- stabilization system
- stabilizing system
- stacking system
- stand-alone system
- standard control system
- standard unit system
- starting system
- statistical process control system
- steady-state system
- stepping motor drive system
- stocker system
- stocking system
- stop-bolt locking system
- storage system
- storage-and-retrieval system
- storage-retrieval system
- straight cut control system
- straight-line control system
- stress calculations infinite element system
- structurally stable system
- structurally unstable system
- stub-tooth system
- subloop system
- supervision system
- supervisory computer control system
- supervisory control system
- surface-measurement system
- surveillance system
- suspension system
- swarf conveyance system
- swarf-management system
- swarf-removal system
- switching system
- synthetic vision system
- system of dimensioning
- system of forces
- system of limits and fits
- system of quantities
- system of the machine retaining devices
- system of units
- tactile sensing system
- tailored NC system
- tailor-made system
- tape-oriented system
- target system
- teach system
- teachable-logic control system
- teaching system
- teach-mode programming system
- technology-intensive system
- telecommunication system
- telemetry gage system
- telemetry system
- teleoperated system
- telepresence system
- telerobotic system
- ten-station pallet system
- term system
- test system
- testing system
- text organizing system
- thermal control system
- thermal enclosure system
- thermal propulsion system
- thread measurement system
- thread measuring system
- three-dimensional CAM system
- three-dimensional coordinate system
- three-wire thread measuring system
- through feed system
- through-the-tool system
- time control system
- time cycle system
- time-shared system
- time-sharing NC programming system
- time-sharing system
- tool animation system
- tool breakage prevention system
- tool change system
- tool condition monitoring system
- tool coolant system
- tool deflection calibration system
- tool identification tag system
- tool life control system
- tool life management system
- tool magazine exchanger system
- tool management system
- tool position-compensating system
- tool shank cleaning system
- tool storage and transport system
- tool storage/management system
- tool-associated system
- tool-clamp system
- tool-holder-work system
- tool-ID system
- tooling AGV system
- tooling system
- tool-in-hand system
- tool-in-use system
- tool-machine system
- tool-monitoring system
- tool-mounting system
- tool-presetting system
- tool-probing system
- tool-to-turret connection system
- tool-transfer system
- torque-monitoring system
- total system
- total-loss lubrication system
- touch-probe digitizer system
- touch-probe digitizing system
- touch-probe system
- towline cart system
- towline conveyor system
- towline handling system
- towline material handling system
- towline transfer system
- tracer control system
- tracing system
- track system
- tracking/scheduling system
- track-monitoring system
- transfer system
- translating system
- transmission system
- transporter system
- traverse-metering system
- tray-type transfer system
- triangulation system
- tribomechanical system
- tri-level stocker system
- triordinate system
- trolley control system
- trouble-free control system
- T-slot system
- tuned system
- turning system
- turning-and-chucking system
- turnkey computer control system
- turnkey system
- turret probing system
- turret tooling system
- two-line lubrication system
- two-machine system
- two-pallet exchange system
- two-shift system
- two-tier inspection system
- unattended machining system
- unattended production system
- uncertain system
- unified system
- unit bore system
- unit system
- unit-build system
- unit-load automated storage and retrieval system
- unit-load system
- UNIX-based 32-bit computer system
- unmonitored control system
- unstable system
- user identification system
- user's CAD system
- V coding system
- vacuum system
- variable pallet system
- variable-coefficient system
- variable-gain ACC system
- variable-mission system
- versatile data acquisition system
- vertical carousel system
- vertical rotating warehouse system
- vibration system
- vibratory system
- video measuring system
- video-based measurement system
- viewing system
- virtual design system
- virtual storage system
- vision guidance system
- vision metrology system
- vision optical system
- vision sensor system
- vision system
- vision tool-presetting system
- vision-based inspection system
- vision-based system
- visual computing system
- visual inspection system
- VME-based system
- voice data entry system
- voice system
- voice-input system
- volume-flexible system
- volume-metric lubrication system
- voluntary standards system
- warehousing system
- warning protection system
- warning system
- wash system
- waste material treatment system
- watchdog system
- waterjet system
- way-lubrication system
- wedge-locked tool clamping system
- wheelhead-measuring system
- windowing system
- wire-cut system
- wire-frame CAD system
- wire-guided transport system
- wire-guided trolley routing system
- word recognition system
- work infeed system
- work transfer system
- work transport system
- workhandling system
- work-holding system
- workpiece-cleaning system
- workstation-oriented CNC system
- zero error position systemEnglish-Russian dictionary of mechanical engineering and automation > system
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12 Artificial Intelligence
In my opinion, none of [these programs] does even remote justice to the complexity of human mental processes. Unlike men, "artificially intelligent" programs tend to be single minded, undistractable, and unemotional. (Neisser, 1967, p. 9)Future progress in [artificial intelligence] will depend on the development of both practical and theoretical knowledge.... As regards theoretical knowledge, some have sought a unified theory of artificial intelligence. My view is that artificial intelligence is (or soon will be) an engineering discipline since its primary goal is to build things. (Nilsson, 1971, pp. vii-viii)Most workers in AI [artificial intelligence] research and in related fields confess to a pronounced feeling of disappointment in what has been achieved in the last 25 years. Workers entered the field around 1950, and even around 1960, with high hopes that are very far from being realized in 1972. In no part of the field have the discoveries made so far produced the major impact that was then promised.... In the meantime, claims and predictions regarding the potential results of AI research had been publicized which went even farther than the expectations of the majority of workers in the field, whose embarrassments have been added to by the lamentable failure of such inflated predictions....When able and respected scientists write in letters to the present author that AI, the major goal of computing science, represents "another step in the general process of evolution"; that possibilities in the 1980s include an all-purpose intelligence on a human-scale knowledge base; that awe-inspiring possibilities suggest themselves based on machine intelligence exceeding human intelligence by the year 2000 [one has the right to be skeptical]. (Lighthill, 1972, p. 17)4) Just as Astronomy Succeeded Astrology, the Discovery of Intellectual Processes in Machines Should Lead to a Science, EventuallyJust as astronomy succeeded astrology, following Kepler's discovery of planetary regularities, the discoveries of these many principles in empirical explorations on intellectual processes in machines should lead to a science, eventually. (Minsky & Papert, 1973, p. 11)5) Problems in Machine Intelligence Arise Because Things Obvious to Any Person Are Not Represented in the ProgramMany problems arise in experiments on machine intelligence because things obvious to any person are not represented in any program. One can pull with a string, but one cannot push with one.... Simple facts like these caused serious problems when Charniak attempted to extend Bobrow's "Student" program to more realistic applications, and they have not been faced up to until now. (Minsky & Papert, 1973, p. 77)What do we mean by [a symbolic] "description"? We do not mean to suggest that our descriptions must be made of strings of ordinary language words (although they might be). The simplest kind of description is a structure in which some features of a situation are represented by single ("primitive") symbols, and relations between those features are represented by other symbols-or by other features of the way the description is put together. (Minsky & Papert, 1973, p. 11)[AI is] the use of computer programs and programming techniques to cast light on the principles of intelligence in general and human thought in particular. (Boden, 1977, p. 5)The word you look for and hardly ever see in the early AI literature is the word knowledge. They didn't believe you have to know anything, you could always rework it all.... In fact 1967 is the turning point in my mind when there was enough feeling that the old ideas of general principles had to go.... I came up with an argument for what I called the primacy of expertise, and at the time I called the other guys the generalists. (Moses, quoted in McCorduck, 1979, pp. 228-229)9) Artificial Intelligence Is Psychology in a Particularly Pure and Abstract FormThe basic idea of cognitive science is that intelligent beings are semantic engines-in other words, automatic formal systems with interpretations under which they consistently make sense. We can now see why this includes psychology and artificial intelligence on a more or less equal footing: people and intelligent computers (if and when there are any) turn out to be merely different manifestations of the same underlying phenomenon. Moreover, with universal hardware, any semantic engine can in principle be formally imitated by a computer if only the right program can be found. And that will guarantee semantic imitation as well, since (given the appropriate formal behavior) the semantics is "taking care of itself" anyway. Thus we also see why, from this perspective, artificial intelligence can be regarded as psychology in a particularly pure and abstract form. The same fundamental structures are under investigation, but in AI, all the relevant parameters are under direct experimental control (in the programming), without any messy physiology or ethics to get in the way. (Haugeland, 1981b, p. 31)There are many different kinds of reasoning one might imagine:Formal reasoning involves the syntactic manipulation of data structures to deduce new ones following prespecified rules of inference. Mathematical logic is the archetypical formal representation. Procedural reasoning uses simulation to answer questions and solve problems. When we use a program to answer What is the sum of 3 and 4? it uses, or "runs," a procedural model of arithmetic. Reasoning by analogy seems to be a very natural mode of thought for humans but, so far, difficult to accomplish in AI programs. The idea is that when you ask the question Can robins fly? the system might reason that "robins are like sparrows, and I know that sparrows can fly, so robins probably can fly."Generalization and abstraction are also natural reasoning process for humans that are difficult to pin down well enough to implement in a program. If one knows that Robins have wings, that Sparrows have wings, and that Blue jays have wings, eventually one will believe that All birds have wings. This capability may be at the core of most human learning, but it has not yet become a useful technique in AI.... Meta- level reasoning is demonstrated by the way one answers the question What is Paul Newman's telephone number? You might reason that "if I knew Paul Newman's number, I would know that I knew it, because it is a notable fact." This involves using "knowledge about what you know," in particular, about the extent of your knowledge and about the importance of certain facts. Recent research in psychology and AI indicates that meta-level reasoning may play a central role in human cognitive processing. (Barr & Feigenbaum, 1981, pp. 146-147)Suffice it to say that programs already exist that can do things-or, at the very least, appear to be beginning to do things-which ill-informed critics have asserted a priori to be impossible. Examples include: perceiving in a holistic as opposed to an atomistic way; using language creatively; translating sensibly from one language to another by way of a language-neutral semantic representation; planning acts in a broad and sketchy fashion, the details being decided only in execution; distinguishing between different species of emotional reaction according to the psychological context of the subject. (Boden, 1981, p. 33)Can the synthesis of Man and Machine ever be stable, or will the purely organic component become such a hindrance that it has to be discarded? If this eventually happens-and I have... good reasons for thinking that it must-we have nothing to regret and certainly nothing to fear. (Clarke, 1984, p. 243)The thesis of GOFAI... is not that the processes underlying intelligence can be described symbolically... but that they are symbolic. (Haugeland, 1985, p. 113)14) Artificial Intelligence Provides a Useful Approach to Psychological and Psychiatric Theory FormationIt is all very well formulating psychological and psychiatric theories verbally but, when using natural language (even technical jargon), it is difficult to recognise when a theory is complete; oversights are all too easily made, gaps too readily left. This is a point which is generally recognised to be true and it is for precisely this reason that the behavioural sciences attempt to follow the natural sciences in using "classical" mathematics as a more rigorous descriptive language. However, it is an unfortunate fact that, with a few notable exceptions, there has been a marked lack of success in this application. It is my belief that a different approach-a different mathematics-is needed, and that AI provides just this approach. (Hand, quoted in Hand, 1985, pp. 6-7)We might distinguish among four kinds of AI.Research of this kind involves building and programming computers to perform tasks which, to paraphrase Marvin Minsky, would require intelligence if they were done by us. Researchers in nonpsychological AI make no claims whatsoever about the psychological realism of their programs or the devices they build, that is, about whether or not computers perform tasks as humans do.Research here is guided by the view that the computer is a useful tool in the study of mind. In particular, we can write computer programs or build devices that simulate alleged psychological processes in humans and then test our predictions about how the alleged processes work. We can weave these programs and devices together with other programs and devices that simulate different alleged mental processes and thereby test the degree to which the AI system as a whole simulates human mentality. According to weak psychological AI, working with computer models is a way of refining and testing hypotheses about processes that are allegedly realized in human minds.... According to this view, our minds are computers and therefore can be duplicated by other computers. Sherry Turkle writes that the "real ambition is of mythic proportions, making a general purpose intelligence, a mind." (Turkle, 1984, p. 240) The authors of a major text announce that "the ultimate goal of AI research is to build a person or, more humbly, an animal." (Charniak & McDermott, 1985, p. 7)Research in this field, like strong psychological AI, takes seriously the functionalist view that mentality can be realized in many different types of physical devices. Suprapsychological AI, however, accuses strong psychological AI of being chauvinisticof being only interested in human intelligence! Suprapsychological AI claims to be interested in all the conceivable ways intelligence can be realized. (Flanagan, 1991, pp. 241-242)16) Determination of Relevance of Rules in Particular ContextsEven if the [rules] were stored in a context-free form the computer still couldn't use them. To do that the computer requires rules enabling it to draw on just those [ rules] which are relevant in each particular context. Determination of relevance will have to be based on further facts and rules, but the question will again arise as to which facts and rules are relevant for making each particular determination. One could always invoke further facts and rules to answer this question, but of course these must be only the relevant ones. And so it goes. It seems that AI workers will never be able to get started here unless they can settle the problem of relevance beforehand by cataloguing types of context and listing just those facts which are relevant in each. (Dreyfus & Dreyfus, 1986, p. 80)Perhaps the single most important idea to artificial intelligence is that there is no fundamental difference between form and content, that meaning can be captured in a set of symbols such as a semantic net. (G. Johnson, 1986, p. 250)Artificial intelligence is based on the assumption that the mind can be described as some kind of formal system manipulating symbols that stand for things in the world. Thus it doesn't matter what the brain is made of, or what it uses for tokens in the great game of thinking. Using an equivalent set of tokens and rules, we can do thinking with a digital computer, just as we can play chess using cups, salt and pepper shakers, knives, forks, and spoons. Using the right software, one system (the mind) can be mapped into the other (the computer). (G. Johnson, 1986, p. 250)19) A Statement of the Primary and Secondary Purposes of Artificial IntelligenceThe primary goal of Artificial Intelligence is to make machines smarter.The secondary goals of Artificial Intelligence are to understand what intelligence is (the Nobel laureate purpose) and to make machines more useful (the entrepreneurial purpose). (Winston, 1987, p. 1)The theoretical ideas of older branches of engineering are captured in the language of mathematics. We contend that mathematical logic provides the basis for theory in AI. Although many computer scientists already count logic as fundamental to computer science in general, we put forward an even stronger form of the logic-is-important argument....AI deals mainly with the problem of representing and using declarative (as opposed to procedural) knowledge. Declarative knowledge is the kind that is expressed as sentences, and AI needs a language in which to state these sentences. Because the languages in which this knowledge usually is originally captured (natural languages such as English) are not suitable for computer representations, some other language with the appropriate properties must be used. It turns out, we think, that the appropriate properties include at least those that have been uppermost in the minds of logicians in their development of logical languages such as the predicate calculus. Thus, we think that any language for expressing knowledge in AI systems must be at least as expressive as the first-order predicate calculus. (Genesereth & Nilsson, 1987, p. viii)21) Perceptual Structures Can Be Represented as Lists of Elementary PropositionsIn artificial intelligence studies, perceptual structures are represented as assemblages of description lists, the elementary components of which are propositions asserting that certain relations hold among elements. (Chase & Simon, 1988, p. 490)Artificial intelligence (AI) is sometimes defined as the study of how to build and/or program computers to enable them to do the sorts of things that minds can do. Some of these things are commonly regarded as requiring intelligence: offering a medical diagnosis and/or prescription, giving legal or scientific advice, proving theorems in logic or mathematics. Others are not, because they can be done by all normal adults irrespective of educational background (and sometimes by non-human animals too), and typically involve no conscious control: seeing things in sunlight and shadows, finding a path through cluttered terrain, fitting pegs into holes, speaking one's own native tongue, and using one's common sense. Because it covers AI research dealing with both these classes of mental capacity, this definition is preferable to one describing AI as making computers do "things that would require intelligence if done by people." However, it presupposes that computers could do what minds can do, that they might really diagnose, advise, infer, and understand. One could avoid this problematic assumption (and also side-step questions about whether computers do things in the same way as we do) by defining AI instead as "the development of computers whose observable performance has features which in humans we would attribute to mental processes." This bland characterization would be acceptable to some AI workers, especially amongst those focusing on the production of technological tools for commercial purposes. But many others would favour a more controversial definition, seeing AI as the science of intelligence in general-or, more accurately, as the intellectual core of cognitive science. As such, its goal is to provide a systematic theory that can explain (and perhaps enable us to replicate) both the general categories of intentionality and the diverse psychological capacities grounded in them. (Boden, 1990b, pp. 1-2)Because the ability to store data somewhat corresponds to what we call memory in human beings, and because the ability to follow logical procedures somewhat corresponds to what we call reasoning in human beings, many members of the cult have concluded that what computers do somewhat corresponds to what we call thinking. It is no great difficulty to persuade the general public of that conclusion since computers process data very fast in small spaces well below the level of visibility; they do not look like other machines when they are at work. They seem to be running along as smoothly and silently as the brain does when it remembers and reasons and thinks. On the other hand, those who design and build computers know exactly how the machines are working down in the hidden depths of their semiconductors. Computers can be taken apart, scrutinized, and put back together. Their activities can be tracked, analyzed, measured, and thus clearly understood-which is far from possible with the brain. This gives rise to the tempting assumption on the part of the builders and designers that computers can tell us something about brains, indeed, that the computer can serve as a model of the mind, which then comes to be seen as some manner of information processing machine, and possibly not as good at the job as the machine. (Roszak, 1994, pp. xiv-xv)The inner workings of the human mind are far more intricate than the most complicated systems of modern technology. Researchers in the field of artificial intelligence have been attempting to develop programs that will enable computers to display intelligent behavior. Although this field has been an active one for more than thirty-five years and has had many notable successes, AI researchers still do not know how to create a program that matches human intelligence. No existing program can recall facts, solve problems, reason, learn, and process language with human facility. This lack of success has occurred not because computers are inferior to human brains but rather because we do not yet know in sufficient detail how intelligence is organized in the brain. (Anderson, 1995, p. 2)Historical dictionary of quotations in cognitive science > Artificial Intelligence
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13 display
di'splei
1. verb1) (to set out for show: The china was displayed in a special cabinet.) exhibir, exponer2) (to show: She displayed a talent for mimicry.) mostrar, manifestar, revelar
2. noun1) ((an) act of showing or making clear: a display of military strength.) exhibición, demostración2) (an entertainment etc intended to show the ability etc of those taking part: a dancing display.) exhibición3) (something which shows or sets out something else: an advertising display.) exposición4) (the part of a video recorder, calculator, digital watch etc that shows numbers, the date, time, or other information.) visordisplay1 n exposición / exhibición / muestradisplay2 vb exponer / exhibir
display sustantivo masculino
1 Inform display
2 (publicidad) display ' display' also found in these entries: Spanish: aparato - castillo - derroche - despliegue - exhibir - exhibición - exponer - expositor - expositora - expuesta - expuesto - lucir - manifestar - manifestación - urna - vitrina - alarde - cristalera - desplegar - escaparate - externar - gala English: display - grandiose - impartiality - liquid crystal display - managerial - unit - VDU - blaze - demonstration - dummy - LCD - liquid - parade - presentation - show - tattoo - VDT - visualtr[dɪ'spleɪ]2 (of strength, force) exhibición nombre femenino, despliegue nombre masculino; (of feelings, skills) demostración nombre femenino, exteriorización nombre femenino3 SMALLCOMPUTING/SMALL visualización nombre femenino1 (put on show - china, medals) exhibir; (goods, paintings) exponer; (notice, advertisement, permit) colocar2 (flaunt) hacer alarde de, hacer gala de, hacer despliegue de3 (show - feelings, emotions) demostrar, exteriorizar; (- anger, interest, concern) demostrar, manifestar; (skill, tact, courage) - demostrar, dar prueba de; (- qualities, talent) lucir, mostrar4 (headlines) hacer resaltar5 SMALLCOMPUTING/SMALL visualizar\SMALLIDIOMATIC EXPRESSION/SMALLto be on display estar expuesto,-adisplay cabinet vitrinadisplay window escaparate nombre masculinofirework display fuegos nombre masculino plural artificialesdisplay [dɪs'pleɪ] vt: exponer, exhibir, mostrardisplay n: muestra f, exposición m, alarde mn.n.• visualización (Informática) s.f.n.• autoridad s.f.• despliegue s.m.• exhibición s.f.• exposición s.f.• pompa s.f.v.• desplegar v.• exhibir v.• exponer v.• lucir v.• mostrar v.• ostentar v.• presentar v.• revelar v.• tremolar v.
I dɪ'spleɪa) ( put on show) \<\<exhibit\>\> exponer*; \<\<data/figures\>\> ( Comput) visualizar*the shopkeeper displayed his wares — el tendero colocó los artículos en el escaparate (or la estantería etc)
b) ( flaunt) \<\<finery/erudition\>\> hacer* despliegue or gala de; \<\<muscles\>\> lucir*, hacer* alarde dec) ( reveal) \<\<anger/interest\>\> demostrar*, manifestar*; \<\<feelings\>\> exteriorizar*, demostrar*; \<\<tendencies/symptoms\>\> presentar; \<\<skill/courage\>\> demostrar*, dar* prueba de
II
1)a) ( exhibition) exposición f, muestra f; ( show) show mfirework display — fuegos mpl artificiales
to be on display — \<\<painting/wares\>\> estar* expuesto
to put something on display — exponer* algo
b) ( arrangement)a display of flowers — un arreglo floral; (before n)
c) ( of feeling) exteriorización f, demostración f; (of courage, strength, knowledge) despliegue m; ( of ignorance) demostración fhe made (a) great display of his experience in those matters — hizo gran alarde de su experiencia en ese campo
2) (Comput, Electron) display m, visualizador mdigital/analog display — visualizador digital/analógico; (before n) <screen, panel> de visualización (de datos)
3) (Journ, Print) (before n)[dɪs'pleɪ]display advertising — anuncios mpl destacados
1. N1) (=act of displaying) [of merchandise] exposición f ; (in gallery, museum) exposición f, exhibición f ; [of emotion, interest] manifestación f, demostración f ; [of force] despliegue m2) (=array) [of merchandise] muestrario m, surtido m ; (in gallery, museum) exposición fwindow display — (in shop) escaparate m
3) (=show) (Mil) exhibición f, demostración fa firework(s) display — fuegos mpl artificiales
4) (=ostentation)5) (Comput) (=act) visualización f2. VT1) (=put on view) [+ goods, painting, exhibit] exponer, exhibir; [+ notice, results] exponer, hacer público2) (=show) [+ emotion, ignorance] mostrar, manifestar; [+ courage] demostrar, hacer gala de3) (=show ostentatiously) [+ one's knowledge] alardear de, hacer alarde de4) (Comput) desplegar, visualizar3.CPDdisplay advertising N — (Press) pancartas fpl publicitarias, publicidad f gráfica
display cabinet N — vitrina f
display case N — vitrina f
display screen, display unit N — (Comput) monitor m
display window N — escaparate m
* * *
I [dɪ'spleɪ]a) ( put on show) \<\<exhibit\>\> exponer*; \<\<data/figures\>\> ( Comput) visualizar*the shopkeeper displayed his wares — el tendero colocó los artículos en el escaparate (or la estantería etc)
b) ( flaunt) \<\<finery/erudition\>\> hacer* despliegue or gala de; \<\<muscles\>\> lucir*, hacer* alarde dec) ( reveal) \<\<anger/interest\>\> demostrar*, manifestar*; \<\<feelings\>\> exteriorizar*, demostrar*; \<\<tendencies/symptoms\>\> presentar; \<\<skill/courage\>\> demostrar*, dar* prueba de
II
1)a) ( exhibition) exposición f, muestra f; ( show) show mfirework display — fuegos mpl artificiales
to be on display — \<\<painting/wares\>\> estar* expuesto
to put something on display — exponer* algo
b) ( arrangement)a display of flowers — un arreglo floral; (before n)
c) ( of feeling) exteriorización f, demostración f; (of courage, strength, knowledge) despliegue m; ( of ignorance) demostración fhe made (a) great display of his experience in those matters — hizo gran alarde de su experiencia en ese campo
2) (Comput, Electron) display m, visualizador mdigital/analog display — visualizador digital/analógico; (before n) <screen, panel> de visualización (de datos)
3) (Journ, Print) (before n)display advertising — anuncios mpl destacados
-
14 pattern
1. n образец, примерan army trained after a western pattern — армия, обученная по западному образцу
2. n спец. образец, шаблон3. n спец. форма, модель4. n схема, диаграмма5. n выкройкаpaper patterns — бумажные выкройки, лекала
6. n образчик7. n образ; манера8. n спец. паттерн9. n рисунок, узор10. n амер. отрез, купон на платье11. n ирл. день храмового святого12. n ирл. храмовой праздник13. n геол. структура, форма, строениеexpenditure pattern — структура издержек; структура расходов
14. n геол. кристаллическая решётка15. n геол. непринятая модель монеты16. n геол. ав. площадь бомбардировки17. n геол. воен. площадь рассеивания, распределение попаданий18. v делать по образцу, копировать19. v украшать узоромchessboard pattern — шахматный узор, рисунок в клетку
20. v следовать примеру, брать за образецСинонимический ряд:1. decoration (noun) decoration; design; device; figure; formation; motif; motive; ornament; trim2. example (noun) archetype; beau ideal; ensample; example; exemplar; guide; ideal; mirror; model; original; paradigm; paragon; phenomenon; standard; stereotype3. form (noun) cast; configuration; form; format; shape4. habit (noun) characteristic; habit5. kind (noun) kind; sort; style; type6. order (noun) method; order; orderliness; plan; system7. specimen (noun) illustration; sample; specimen8. model (verb) copy; duplicate; emulate; fashion; follow; imitate; modelАнтонимический ряд:monstrosity; originate; perversion -
15 CM
1) Общая лексика: Crisis Manager (SEIC), central meridian2) Компьютерная техника: Computer Modeled, Contextual Menus3) Биология: carboxymethyl4) Авиация: Conversion Manual, call maintenance, collective modification, crew member5) Медицина: cochlear micriphonics (микрофонный эффект улитки)6) Американизм: Consequence Management7) Военный термин: Canada Medal, Chairman's Memorandum, Changes Made, Chemical, Collection Management Division, Collection Manager, Colonial Marines, Combat Magic, Communication Management, Conceptual Model, Council Memorandum, Counter-mobility, Countermine Activities, Memorandum by the Chairman, Joint Chiefs of Staff, career management, career motivation, center of mass, certificate of merit, chemical munitions, chief of maintenance, class of material, classified message, code message, collection management, combat materiel, command message, commander's manual, communications module, complementary manual, condition monitoring, confidential memorandum, continuous monitoring, contract management, contract modification, controlled minefield, corrective maintenance, cost model, countermeasures, countermortar, court martial, crewman, cruise missile, Countermeasure (s)8) Техника: Curtail M, camera module, coarse mixing, code modulation, color monitor, common memory, common-mode signal, communications memory, communications multiplexer, comparator, computer-manual, concentrating mirror, constant-mesh, contact mask, coolant melt, coolant mixing, core melt, radioelectronic countermeasures9) Сельское хозяйство: combustible matter10) Шутливое выражение: Condescension Man11) Химия: Cementitious Materials, Customized Microscopy12) Математика: Championship Manager, поправка на среднее значение (correction for mean), содержательная модель (conceptual model)13) Железнодорожный термин: Central Montana Rail Incorporated14) Юридический термин: Case Management, Colored Male15) Бухгалтерия: Compounding Method, Contribution Margin, маржинальная прибыль (стоимость продаж минус переменные затраты)16) Грубое выражение: Chick Magnet17) Дипломатический термин: (cruise missile) крылатая ракета18) Металлургия: country of melt19) Политика: Cameroon20) Телекоммуникации: Connection Manager, Communications Module (AT&T 5ESS)21) Сокращение: Certified Master, Cluster Munition, Common Market, Competent Munitions, Congregation of the Mission, Corresponding Member, CounterMine, Countermeasure, Court-Martial, circuit master, see C-M P&, Command Module (Apollo spacecraft), (type abbreviation) Corvette (Peruvian Navy; guided missile), Coal Measures, Colour Monitor, Communications, Compartmented Mode, Cost of Mission, cellular manufacturing22) Физиология: Cyclical Menses23) Шахматы: CheckMate24) Электроника: Cassette Module, Common Mode, Cross Modulation25) Вычислительная техника: . command mode, central module, computer module, control mark, Command Module (Apollo spacecraft, Space), Configuration Manager (BIOS, PNP), Compatibility Mode (PARISC, NM), Connection Management (RR, MM, GSM, Mobile-Systems), модуль связи, мультиплексор каналов связи, память на магнитных сердечниках, центральный модуль27) Иммунология: Clinical Modification, Clinical Modifications28) Биохимия: Quinacrine Mustard29) Онкология: Centimeter - 0.01 Meters30) Космонавтика: Command Module31) Картография: catholic mission32) Банковское дело: collusive merchant, Capital Market (IB&CM - Investment Banking and Capital Market)33) Фирменный знак: Cambridge Thermionics, Canyon Medical34) СМИ: Commercial Message, Contact Management35) Деловая лексика: Chosen Multiplier, антикризисный управляющий36) Глоссарий компании Сахалин Энерджи: cubic meter37) Образование: Common Man38) Сетевые технологии: Cable Modem, Connection Management, Content Management, cache-movable, command mode, communication module, communication multiplexer, communication multiplexing, configuration management, contact manager, control module, core memory39) Полимеры: compression molding, compression-molded40) Автоматика: coolant management41) Контроль качества: correction for mean42) Пластмассы: Chlorinated Polyethylene Rubber43) Сахалин Р: construction Management44) Океанография: Current Meter45) Химическое оружие: chemical matters46) Безопасность: Cryptological Mathematics47) Расширение файла: Bitmap graphics (8bit, Unix Puzzle), Data (CraftMan)48) Нефть и газ: УКС, управляющий кризисными ситуациями49) Электротехника: cyclically magnetized50) США: Central Michigan51) Имена и фамилии: Charles Mack, Chris Miller52) Должность: Case Manager, Cast Member, Certified Manager, Chief Minister, Chill Master, Construction Manager53) Чат: Chat Maniac, Chat Monitor54) NYSE. Coles Myer, LTD.55) НАСА: Command Module (Apollo)56) Программное обеспечение: Cache Manager, Compilation Manager57) Единицы измерений: Circular Mils, Curly Maple -
16 Cm
1) Общая лексика: Crisis Manager (SEIC), central meridian2) Компьютерная техника: Computer Modeled, Contextual Menus3) Биология: carboxymethyl4) Авиация: Conversion Manual, call maintenance, collective modification, crew member5) Медицина: cochlear micriphonics (микрофонный эффект улитки)6) Американизм: Consequence Management7) Военный термин: Canada Medal, Chairman's Memorandum, Changes Made, Chemical, Collection Management Division, Collection Manager, Colonial Marines, Combat Magic, Communication Management, Conceptual Model, Council Memorandum, Counter-mobility, Countermine Activities, Memorandum by the Chairman, Joint Chiefs of Staff, career management, career motivation, center of mass, certificate of merit, chemical munitions, chief of maintenance, class of material, classified message, code message, collection management, combat materiel, command message, commander's manual, communications module, complementary manual, condition monitoring, confidential memorandum, continuous monitoring, contract management, contract modification, controlled minefield, corrective maintenance, cost model, countermeasures, countermortar, court martial, crewman, cruise missile, Countermeasure (s)8) Техника: Curtail M, camera module, coarse mixing, code modulation, color monitor, common memory, common-mode signal, communications memory, communications multiplexer, comparator, computer-manual, concentrating mirror, constant-mesh, contact mask, coolant melt, coolant mixing, core melt, radioelectronic countermeasures9) Сельское хозяйство: combustible matter10) Шутливое выражение: Condescension Man11) Химия: Cementitious Materials, Customized Microscopy12) Математика: Championship Manager, поправка на среднее значение (correction for mean), содержательная модель (conceptual model)13) Железнодорожный термин: Central Montana Rail Incorporated14) Юридический термин: Case Management, Colored Male15) Бухгалтерия: Compounding Method, Contribution Margin, маржинальная прибыль (стоимость продаж минус переменные затраты)16) Грубое выражение: Chick Magnet17) Дипломатический термин: (cruise missile) крылатая ракета18) Металлургия: country of melt19) Политика: Cameroon20) Телекоммуникации: Connection Manager, Communications Module (AT&T 5ESS)21) Сокращение: Certified Master, Cluster Munition, Common Market, Competent Munitions, Congregation of the Mission, Corresponding Member, CounterMine, Countermeasure, Court-Martial, circuit master, see C-M P&, Command Module (Apollo spacecraft), (type abbreviation) Corvette (Peruvian Navy; guided missile), Coal Measures, Colour Monitor, Communications, Compartmented Mode, Cost of Mission, cellular manufacturing22) Физиология: Cyclical Menses23) Шахматы: CheckMate24) Электроника: Cassette Module, Common Mode, Cross Modulation25) Вычислительная техника: . command mode, central module, computer module, control mark, Command Module (Apollo spacecraft, Space), Configuration Manager (BIOS, PNP), Compatibility Mode (PARISC, NM), Connection Management (RR, MM, GSM, Mobile-Systems), модуль связи, мультиплексор каналов связи, память на магнитных сердечниках, центральный модуль27) Иммунология: Clinical Modification, Clinical Modifications28) Биохимия: Quinacrine Mustard29) Онкология: Centimeter - 0.01 Meters30) Космонавтика: Command Module31) Картография: catholic mission32) Банковское дело: collusive merchant, Capital Market (IB&CM - Investment Banking and Capital Market)33) Фирменный знак: Cambridge Thermionics, Canyon Medical34) СМИ: Commercial Message, Contact Management35) Деловая лексика: Chosen Multiplier, антикризисный управляющий36) Глоссарий компании Сахалин Энерджи: cubic meter37) Образование: Common Man38) Сетевые технологии: Cable Modem, Connection Management, Content Management, cache-movable, command mode, communication module, communication multiplexer, communication multiplexing, configuration management, contact manager, control module, core memory39) Полимеры: compression molding, compression-molded40) Автоматика: coolant management41) Контроль качества: correction for mean42) Пластмассы: Chlorinated Polyethylene Rubber43) Сахалин Р: construction Management44) Океанография: Current Meter45) Химическое оружие: chemical matters46) Безопасность: Cryptological Mathematics47) Расширение файла: Bitmap graphics (8bit, Unix Puzzle), Data (CraftMan)48) Нефть и газ: УКС, управляющий кризисными ситуациями49) Электротехника: cyclically magnetized50) США: Central Michigan51) Имена и фамилии: Charles Mack, Chris Miller52) Должность: Case Manager, Cast Member, Certified Manager, Chief Minister, Chill Master, Construction Manager53) Чат: Chat Maniac, Chat Monitor54) NYSE. Coles Myer, LTD.55) НАСА: Command Module (Apollo)56) Программное обеспечение: Cache Manager, Compilation Manager57) Единицы измерений: Circular Mils, Curly Maple -
17 cM
1) Общая лексика: Crisis Manager (SEIC), central meridian2) Компьютерная техника: Computer Modeled, Contextual Menus3) Биология: carboxymethyl4) Авиация: Conversion Manual, call maintenance, collective modification, crew member5) Медицина: cochlear micriphonics (микрофонный эффект улитки)6) Американизм: Consequence Management7) Военный термин: Canada Medal, Chairman's Memorandum, Changes Made, Chemical, Collection Management Division, Collection Manager, Colonial Marines, Combat Magic, Communication Management, Conceptual Model, Council Memorandum, Counter-mobility, Countermine Activities, Memorandum by the Chairman, Joint Chiefs of Staff, career management, career motivation, center of mass, certificate of merit, chemical munitions, chief of maintenance, class of material, classified message, code message, collection management, combat materiel, command message, commander's manual, communications module, complementary manual, condition monitoring, confidential memorandum, continuous monitoring, contract management, contract modification, controlled minefield, corrective maintenance, cost model, countermeasures, countermortar, court martial, crewman, cruise missile, Countermeasure (s)8) Техника: Curtail M, camera module, coarse mixing, code modulation, color monitor, common memory, common-mode signal, communications memory, communications multiplexer, comparator, computer-manual, concentrating mirror, constant-mesh, contact mask, coolant melt, coolant mixing, core melt, radioelectronic countermeasures9) Сельское хозяйство: combustible matter10) Шутливое выражение: Condescension Man11) Химия: Cementitious Materials, Customized Microscopy12) Математика: Championship Manager, поправка на среднее значение (correction for mean), содержательная модель (conceptual model)13) Железнодорожный термин: Central Montana Rail Incorporated14) Юридический термин: Case Management, Colored Male15) Бухгалтерия: Compounding Method, Contribution Margin, маржинальная прибыль (стоимость продаж минус переменные затраты)16) Грубое выражение: Chick Magnet17) Дипломатический термин: (cruise missile) крылатая ракета18) Металлургия: country of melt19) Политика: Cameroon20) Телекоммуникации: Connection Manager, Communications Module (AT&T 5ESS)21) Сокращение: Certified Master, Cluster Munition, Common Market, Competent Munitions, Congregation of the Mission, Corresponding Member, CounterMine, Countermeasure, Court-Martial, circuit master, see C-M P&, Command Module (Apollo spacecraft), (type abbreviation) Corvette (Peruvian Navy; guided missile), Coal Measures, Colour Monitor, Communications, Compartmented Mode, Cost of Mission, cellular manufacturing22) Физиология: Cyclical Menses23) Шахматы: CheckMate24) Электроника: Cassette Module, Common Mode, Cross Modulation25) Вычислительная техника: . command mode, central module, computer module, control mark, Command Module (Apollo spacecraft, Space), Configuration Manager (BIOS, PNP), Compatibility Mode (PARISC, NM), Connection Management (RR, MM, GSM, Mobile-Systems), модуль связи, мультиплексор каналов связи, память на магнитных сердечниках, центральный модуль27) Иммунология: Clinical Modification, Clinical Modifications28) Биохимия: Quinacrine Mustard29) Онкология: Centimeter - 0.01 Meters30) Космонавтика: Command Module31) Картография: catholic mission32) Банковское дело: collusive merchant, Capital Market (IB&CM - Investment Banking and Capital Market)33) Фирменный знак: Cambridge Thermionics, Canyon Medical34) СМИ: Commercial Message, Contact Management35) Деловая лексика: Chosen Multiplier, антикризисный управляющий36) Глоссарий компании Сахалин Энерджи: cubic meter37) Образование: Common Man38) Сетевые технологии: Cable Modem, Connection Management, Content Management, cache-movable, command mode, communication module, communication multiplexer, communication multiplexing, configuration management, contact manager, control module, core memory39) Полимеры: compression molding, compression-molded40) Автоматика: coolant management41) Контроль качества: correction for mean42) Пластмассы: Chlorinated Polyethylene Rubber43) Сахалин Р: construction Management44) Океанография: Current Meter45) Химическое оружие: chemical matters46) Безопасность: Cryptological Mathematics47) Расширение файла: Bitmap graphics (8bit, Unix Puzzle), Data (CraftMan)48) Нефть и газ: УКС, управляющий кризисными ситуациями49) Электротехника: cyclically magnetized50) США: Central Michigan51) Имена и фамилии: Charles Mack, Chris Miller52) Должность: Case Manager, Cast Member, Certified Manager, Chief Minister, Chill Master, Construction Manager53) Чат: Chat Maniac, Chat Monitor54) NYSE. Coles Myer, LTD.55) НАСА: Command Module (Apollo)56) Программное обеспечение: Cache Manager, Compilation Manager57) Единицы измерений: Circular Mils, Curly Maple -
18 cm
1) Общая лексика: Crisis Manager (SEIC), central meridian2) Компьютерная техника: Computer Modeled, Contextual Menus3) Биология: carboxymethyl4) Авиация: Conversion Manual, call maintenance, collective modification, crew member5) Медицина: cochlear micriphonics (микрофонный эффект улитки)6) Американизм: Consequence Management7) Военный термин: Canada Medal, Chairman's Memorandum, Changes Made, Chemical, Collection Management Division, Collection Manager, Colonial Marines, Combat Magic, Communication Management, Conceptual Model, Council Memorandum, Counter-mobility, Countermine Activities, Memorandum by the Chairman, Joint Chiefs of Staff, career management, career motivation, center of mass, certificate of merit, chemical munitions, chief of maintenance, class of material, classified message, code message, collection management, combat materiel, command message, commander's manual, communications module, complementary manual, condition monitoring, confidential memorandum, continuous monitoring, contract management, contract modification, controlled minefield, corrective maintenance, cost model, countermeasures, countermortar, court martial, crewman, cruise missile, Countermeasure (s)8) Техника: Curtail M, camera module, coarse mixing, code modulation, color monitor, common memory, common-mode signal, communications memory, communications multiplexer, comparator, computer-manual, concentrating mirror, constant-mesh, contact mask, coolant melt, coolant mixing, core melt, radioelectronic countermeasures9) Сельское хозяйство: combustible matter10) Шутливое выражение: Condescension Man11) Химия: Cementitious Materials, Customized Microscopy12) Математика: Championship Manager, поправка на среднее значение (correction for mean), содержательная модель (conceptual model)13) Железнодорожный термин: Central Montana Rail Incorporated14) Юридический термин: Case Management, Colored Male15) Бухгалтерия: Compounding Method, Contribution Margin, маржинальная прибыль (стоимость продаж минус переменные затраты)16) Грубое выражение: Chick Magnet17) Дипломатический термин: (cruise missile) крылатая ракета18) Металлургия: country of melt19) Политика: Cameroon20) Телекоммуникации: Connection Manager, Communications Module (AT&T 5ESS)21) Сокращение: Certified Master, Cluster Munition, Common Market, Competent Munitions, Congregation of the Mission, Corresponding Member, CounterMine, Countermeasure, Court-Martial, circuit master, see C-M P&, Command Module (Apollo spacecraft), (type abbreviation) Corvette (Peruvian Navy; guided missile), Coal Measures, Colour Monitor, Communications, Compartmented Mode, Cost of Mission, cellular manufacturing22) Физиология: Cyclical Menses23) Шахматы: CheckMate24) Электроника: Cassette Module, Common Mode, Cross Modulation25) Вычислительная техника: . command mode, central module, computer module, control mark, Command Module (Apollo spacecraft, Space), Configuration Manager (BIOS, PNP), Compatibility Mode (PARISC, NM), Connection Management (RR, MM, GSM, Mobile-Systems), модуль связи, мультиплексор каналов связи, память на магнитных сердечниках, центральный модуль27) Иммунология: Clinical Modification, Clinical Modifications28) Биохимия: Quinacrine Mustard29) Онкология: Centimeter - 0.01 Meters30) Космонавтика: Command Module31) Картография: catholic mission32) Банковское дело: collusive merchant, Capital Market (IB&CM - Investment Banking and Capital Market)33) Фирменный знак: Cambridge Thermionics, Canyon Medical34) СМИ: Commercial Message, Contact Management35) Деловая лексика: Chosen Multiplier, антикризисный управляющий36) Глоссарий компании Сахалин Энерджи: cubic meter37) Образование: Common Man38) Сетевые технологии: Cable Modem, Connection Management, Content Management, cache-movable, command mode, communication module, communication multiplexer, communication multiplexing, configuration management, contact manager, control module, core memory39) Полимеры: compression molding, compression-molded40) Автоматика: coolant management41) Контроль качества: correction for mean42) Пластмассы: Chlorinated Polyethylene Rubber43) Сахалин Р: construction Management44) Океанография: Current Meter45) Химическое оружие: chemical matters46) Безопасность: Cryptological Mathematics47) Расширение файла: Bitmap graphics (8bit, Unix Puzzle), Data (CraftMan)48) Нефть и газ: УКС, управляющий кризисными ситуациями49) Электротехника: cyclically magnetized50) США: Central Michigan51) Имена и фамилии: Charles Mack, Chris Miller52) Должность: Case Manager, Cast Member, Certified Manager, Chief Minister, Chill Master, Construction Manager53) Чат: Chat Maniac, Chat Monitor54) NYSE. Coles Myer, LTD.55) НАСА: Command Module (Apollo)56) Программное обеспечение: Cache Manager, Compilation Manager57) Единицы измерений: Circular Mils, Curly Maple -
19 simulation
Gen Mgtthe construction of a mathematical model to imitate the behavior of a real-world situation or system in order to test the outcomes of alternative courses of action. Simulation was used in a military context by the Chinese as many as 5,000 years ago and has applications in the fields of science, research and development, economics, and business systems. The use of simulation has become more widespread since the development of computers in the 1950s, which facilitated the manipulation of large quantities of data and made it possible to model more complex systems. Simulation techniques are used in situations where reallife experimentation would be impossible, costly, or dangerous, and for training purposes. -
20 emission forecast
прогноз выбросов
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[ http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]EN
emission forecast
The final step in a clean air plan is to predict future air quality to demonstrate that we can (if we can) meet the health standards by implementing the measures proposed in the plan. This is done by first projecting the emission inventory into the future, taking into account changes in population, housing, employment in specific business sectors, and vehicle miles traveled. These data are obtained from various sources and the resulting emissions are adjusted to account for regulations and control measures scheduled for implementation during the same time period. Additional adjustments are made to reflect large facilities that are expected to start up, modify, or shut down. The resulting inventory is an emission forecast, and is usually expressed in tons per day of particular pollutants for a given year. Additional steps may be required to determine how the forecasted quantities of air pollution will affect the overall air quality. One way to accomplish this is through computer modeling. A computer model simulates how pollutants disperse, react, and move in the air. The inputs to such a computer model are complex. They include weather patterns, terrain, and the chemical nature of air pollutants. (Source: APCD)
[http://www.eionet.europa.eu/gemet/alphabetic?langcode=en]Тематики
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Англо-русский словарь нормативно-технической терминологии > emission forecast
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