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// input, output, i, and k are uint16_t type
// It is assured that k is non-negative and "small enough"
// k = 4
// input = 0x3a44
output = 0;
for (i=k; i<16; i++){
if (input & 1<<i)
output = output | 1 <<(i-k);
}

so input = 0011 1010 0100 0100 with k = 4 or 0000 0000 0000 0100 the loop runs 12 times

I guess what is confusing me is how the if and output parts are working, I know the bitwise operators & and | and that left shift is <<..but I get lost with what the overall function of the loop is

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3  
Extremely narrow interest. – DRVic Mar 30 '12 at 21:45
    
Extremely narrow interest on your extremely narrow interest. – tubby Mar 30 '12 at 21:58
up vote 2 down vote accepted

It's apparently intended to make the output equal to (16 bits of) the input, right-shifted 4 bits (or whatever the value assigned to K happens to be).

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If the ith bit in input is set, then the i-kth bit in the output will be set, for i ranging from k to 15. The value of output | (1 << n) is what you get by taking output and setting the nth bit to 1, since 1 << n is an integer which has only one bit, namely the one in position n, set to 1.

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This is a logical shift k bits to the right. Not sure why output = input >> k; is not used, but I am no C expert

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When trying to understand dense code like that, try writing a table of values out on paper, and manually calculate each item from the loop.

Or, if you're comfortable in Excel, build it as a spreadsheet. You can have one row per iteration of the loop, and that row can refer to the previous row if necessary (as you'd have to with the variable output). By unrolling the loop, and showing intermediate values (like what (1<<i) and 1<<(i-k) are), you can get a better idea of what's happening.

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