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Titlebook: A Course in In-Memory Data Management; The Inner Mechanics Hasso Plattner Textbook 20131st edition Springer-Verlag Berlin Heidelberg 2013

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https://doi.org/10.1007/978-1-4419-6250-8is organized unidimensional, providing memory addresses that start at zero and increase serially to the highest available location. The database storage layer has to decide how to map the two-dimensional table structures to the linear memory address space.
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Flawed Bodies, Blackness, and Incontinence,interfaces as known from row stores in column stores, the returned results have to be transformed into tuples in row format. The process of transforming encoded columnar data into row-oriented tuples is called materialization.
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Gordon Prain,Diana Lee-Smith,Nancy Karanjaderlying data set can easily reach a size of several terabytes in large companies. Although memory capacities of commodity servers are growing, it is still expensive to process those huge data sets entirely in main memory. Therefore, SanssouciDB and most modern in-memory storage engines use compress
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African Values, Ethics, and Technologyoperation can either be of . or . nature. A physical delete operation removes an item from the database so that it is no longer physically accessible. In contrast, a . delete operation only terminates the validity of an item in the dataset, but keeps the tuple still available for temporal queries [P
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Sophia Chirongoma,Lucia Mutsveduout). The impacts were already discussed in Chap. 8 in more detail.The columnar layout is optimized for analytical set-based operations that work on many rows but for a notably smaller subset of all columns of data.The row layout shows a better performance for select operations on few single tuples.
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