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i've run into few problems while working tacop 2.2.2 sequential allocations, repacking memory section at page 247.

the subject is there are n stacks sharing a common area locations L0 < L < LX, initially we set BASE[j] = TOP[j] = L0 for 1 <= j <= n

the goal is when overflow occurs while inserting or deleting elements with respect to stack i, how to repack memory. (making room for stack i by taking some away from tables that aren't yet filled).

a). find the smallest k for which i < k < n and TOP[k] < BASE[k+1], if any such k exists. move things up one notch, Set CONTENTS(L+1) -> CONTENTS(L), for TOP[k] >= L > BASE[i+1] finally, Set BASE[j] -> BASE[j] + 1, TOP[j] -> TOP[j] + 1, for i < j < k

here's my questions:

how do they find the stack that aren't yet to be filled? stack k? and why chose the smallest k?

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1 Answer 1

To find the stack that isn't yet filled, the basic idea used is the fact:

Stack k is not full <==> TOP[k] < BASE[k+1]

The loop in the first step of the algorithm runs k from i+1 to n to find the first k that satisfies this condition.

Also note that initially all space is given to the last, nth, stack by setting BASE[n] = TOP[n] = L0 and BASE[n+1]=LInfty. So unless all "higher" stacks have been filled, we will find such a k.

Your second question (Why choose the smallest such k?) is more easily answered: The algorithm on Page 247 is just one way of repacking and a simple one at that. As Knuth mentions in the paragraph just above the text of the algorithm:

Several ways to do the repacking suggest themselves; ... We will start by giving the simplest of the methods, and will then consider some of the alternatives.

Later, Knuth describes a repacking approach that takes into account the earlier repacking, making the process somewhat adaptive.

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umm...why not BASE[k+1] - TOP[k] > 1, since both BASE[k+1] and TOP[k] has a location, and if BASE[k+1] - TOP[k] = 1 , isn't that means BASE[k+1] is right after TOP[k]? –  lordlinier Jul 21 '09 at 12:15
    
If I got you right, no: BASE[k+1] is unused in the (k+1)st stack, and is available for use by the kth stack (the last element of the kth stack can be stored at location BASE[k+1]). So we need to check BASE[k+1] - TOP[k] > 0 and not BASE[k+1] - TOP[k] > 1. –  Ashutosh Mehra Jul 21 '09 at 13:19

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