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One thing you should decide is what balance you wish to strike between code-file size efficiency, cache efficiency, and raw-execution-speed efficiency. Depending upon the coding patterns for the code you're interpreting, it may be helpful to have each instruction, regardless of its length in the code file, get translated into a structure containing a ...


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The article "On the Advantages of the 8087's Stack", shared in the comments by @Jester, explains the thinking of the designers. A summary of why they organized the floating-point registers as a stack: Potentially, it could have made procedure calls more efficient, since (in theory) neither callers nor callees would have to explicitly save and restore FP ...


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JC = Jump if carry set (C=1) JNC = Jump if carry is not set (C=0) JZ = Jump if zero-flag is set JNZ = Jump if zero-flag is not set JEQ = Jump if equal => another 'name' for JZ (There are many instruction aliases'). When you add two numbers with highest bit set, you'd end up with result with one bit longer that the original numbers. This new bit "goes" ...


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x86 has "strong memory model", which means that every machine instruction comes implicitly with acquire and release semantics. You may further read this, as well as answers to this question.


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For neither of the two do you require the JUMP X instruction. Keep a memory location, say M(0), that will hold the value 0. This is justified because it says "A word in M can be either an instruction or a fixed-point binary number". Use this, to solve the problem. Note: It will take quite a few operations to perform the desired operations.


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By moving the data array MSG in front of the first instruction you effectively asked emu8086 to execute it! The first bytes of MSG correspond to valid 8086 instructions (AAS, PUSH ES, POP BX, and DEC DI) but the fifth byte represents the OPERAND OVERRIDE PREFIX which is not available in the 8086 processor! To solve your problem just jump over MSG: ORG ...


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You apply the instruction on the key when does AES-192 (FIPS 197). Say you have your key in registers xmm2 to xmm14, something like this: aesimc xmm2, xmm2 aesimc xmm3, xmm3 aesimc xmm4, xmm4 ... aesimc xmm13, xmm13 aesimc xmm14, xmm14 This happens before the aesdec. The instructions could also be intermiggled, as long as the aesimc happens on a register ...


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1) I would like to know if we could write a C program to know about the instruction set architecture of the machine. A C program needs some compiler to compile which will convert the code into machine language which is different for different architectures like Sparc, x86, ARM,etc. So,you won't be able to run C program if you don't know about the ...



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