Recursive Star-Tree Parallel Data Structure
This paper introduces a novel parallel data structure called the recursive star-tree (denoted "^ * $-tree"). For its definition a generalization of the $ * $ functional is used (where for a function $f * f(n) = \min \{ {i|f^{(i)} (n) \leqslant 1} \}$ and $f^{(i)} $ is the $i$th iterate of...
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          | Published in | SIAM journal on computing Vol. 22; no. 2; pp. 221 - 242 | 
|---|---|
| Main Authors | , | 
| Format | Journal Article | 
| Language | English | 
| Published | 
        Philadelphia, PA
          Society for Industrial and Applied Mathematics
    
        01.04.1993
     | 
| Subjects | |
| Online Access | Get full text | 
| ISSN | 0097-5397 1095-7111  | 
| DOI | 10.1137/0222017 | 
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| Abstract | This paper introduces a novel parallel data structure called the recursive star-tree (denoted "^ * $-tree"). For its definition a generalization of the $ * $ functional is used (where for a function $f * f(n) = \min \{ {i|f^{(i)} (n) \leqslant 1} \}$ and $f^{(i)} $ is the $i$th iterate of $f$). Recursive ^ * $-trees are derived by using recursion in the spirit of the inverse Ackermann function. The recursive ^ * $-tree data structure leads to a new design paradigm for parallel algorithms. This paradigm allows for extremely fast parallel computations, specifically, $O(\alpha (n))$ time (where $\alpha (n)$ is the inverse of the Ackermann function), using an optimal number of processors on the (weakest) concurrent-read, concurrent-write parallel random-access machine (CRCW PRAM). These computations need only constant time, and use an optimal number of processors if the following nonstandard assumption about the model of parallel computation is added to the CRCW PRAM: an extremely small number of processors each can write simultaneously into different bits of the same word. Applications include finding lowest common ancestors in trees by a new algorithm that is considerably simpler than the known algorithms for the problem, restricted domain merging, parentheses matching, and a new parallel reducibility. | 
    
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| AbstractList | This paper introduces a novel parallel data structure called the recursive star-tree (denoted "^ * $-tree"). For its definition a generalization of the $ * $ functional is used (where for a function $f * f(n) = \min \{ {i|f^{(i)} (n) \leqslant 1} \}$ and $f^{(i)} $ is the $i$th iterate of $f$). Recursive ^ * $-trees are derived by using recursion in the spirit of the inverse Ackermann function. The recursive ^ * $-tree data structure leads to a new design paradigm for parallel algorithms. This paradigm allows for extremely fast parallel computations, specifically, $O(\alpha (n))$ time (where $\alpha (n)$ is the inverse of the Ackermann function), using an optimal number of processors on the (weakest) concurrent-read, concurrent-write parallel random-access machine (CRCW PRAM). These computations need only constant time, and use an optimal number of processors if the following nonstandard assumption about the model of parallel computation is added to the CRCW PRAM: an extremely small number of processors each can write simultaneously into different bits of the same word. Applications include finding lowest common ancestors in trees by a new algorithm that is considerably simpler than the known algorithms for the problem, restricted domain merging, parentheses matching, and a new parallel reducibility. This paper introduces a novel parallel data structure called the recursive star-tree (denoted '-tree'). For its definition a generalization of the functional is used (where for a function of f(n) = min(i!f super((i))(n) less than or approximate to 1) and f super((i)) is the ith iterate of f). Recursive-trees are derived by using recursion in the spirit of the inverse Ackermann function. The recursive -tree data structure leads to a new design paradigm for parallel algorithms. This paradigm allows for extremely fast parallel computations, specifically, O( alpha (n)) time (where alpha (n) is the inverse of the Ackermann function), using an optimal number of processors on the (weakest) concurrent-read, concurrent-write parallel random-access machine (CRCW PRAM). These computations need only constant time, and use an optimal number of processors if the following nonstandard assumption about the model of parallel computation is added to the CRCW PRAM: an extremely small number of processors each can write simultaneously into different bits of the same word. Applications include finding lowest common ancestors in trees by a new algorithm that is considerably simpler than the known algorithms for the problem, restricted domain merging, parentheses matching, and a new parallel reducibility.  | 
    
| Author | Berkman, Omer Vishkin, Uzi  | 
    
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| Cites_doi | 10.1145/3318.3478 10.1006/inco.1993.1056 10.1016/0196-6774(89)90010-2 10.1016/0166-218X(90)90084-P 10.1145/322217.322232 10.1016/0020-0190(85)90025-0 10.1016/S0019-9958(86)80023-7 10.1137/0220002 10.1007/BFb0035771 10.1145/321879.321884 10.1137/0204030 10.1016/0890-5401(89)90036-9 10.1137/0217079 10.1109/TC.1983.1676138 10.1016/0890-5401(89)90003-5 10.1007/BF02579170 10.1137/0213024 10.1137/0213027 10.1145/2166.357211 10.1016/0304-3975(86)90153-2 10.1007/BF01762122 10.1109/12.16507 10.1007/BFb0040376 10.1137/0217037 10.1006/jagm.1993.1018 10.1016/0196-6774(90)90011-3 10.1137/0214061 10.1016/0196-6774(81)90010-9 10.1016/0022-0000(85)90008-X  | 
    
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| Snippet | This paper introduces a novel parallel data structure called the recursive star-tree (denoted "^ * $-tree"). For its definition a generalization of the $ * $... This paper introduces a novel parallel data structure called the recursive star-tree (denoted '-tree'). For its definition a generalization of the functional...  | 
    
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| Title | Recursive Star-Tree Parallel Data Structure | 
    
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