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DSPIC30F2010 датащи(PDF) 14 Page - Microchip Technology |
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DSPIC30F2010 датащи(HTML) 14 Page - Microchip Technology |
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14 / 202 page ![]() dsPIC30F2010 DS70118J-page 14 © 2011 Microchip Technology Inc. 2.3 Divide Support The dsPIC DSC devices feature a 16/16-bit signed fractional divide operation, as well as 32/16-bit and 16/ 16-bit signed and unsigned integer divide operations, in the form of single instruction iterative divides. The following instructions and data sizes are supported: • DIVF – 16/16 signed fractional divide • DIV.sd – 32/16 signed divide • DIV.ud – 32/16 unsigned divide • DIV.sw – 16/16 signed divide • DIV.uw – 16/16 unsigned divide The 16/16 divides are similar to the 32/16 (same number of iterations), but the dividend is either zero-extended or sign-extended during the first iteration. The divide instructions must be executed within a REPEAT loop. Any other form of execution (e.g., a series of discrete divide instructions) will not function correctly because the instruction flow depends on RCOUNT. The divide instruction does not automatically set up the RCOUNT value, and it must, therefore, be explicitly and correctly specified in the REPEAT instruc- tion, as shown in Table 2-2 (REPEAT will execute the target instruction {operand value + 1} times). The REPEAT loop count must be set up for 18 iterations of the DIV/DIVF instruction. Thus, a complete divide operation requires 19 cycles. 2.4 DSP Engine The DSP engine consists of a high-speed 17-bit x 17-bit multiplier, a barrel shifter, and a 40-bit adder/sub- tracter (with two target accumulators, round and saturation logic). The DSP engine also has the capability to perform inher- ent accumulator-to-accumulator operations, which require no additional data. These instructions are ADD, SUB , and NEG. The DSP engine has various options selected through various bits in the CPU Core Configuration Register (CORCON), as listed below: • Fractional or integer DSP multiply (IF). • Signed or unsigned DSP multiply (US). • Conventional or convergent rounding (RND). • Automatic saturation on/off for ACCA (SATA). • Automatic saturation on/off for ACCB (SATB). • Automatic saturation on/off for writes to data memory (SATDW). • Accumulator Saturation mode selection (ACC- SAT). A block diagram of the DSP engine is shown in Figure 2-2. TABLE 2-2: DIVIDE INSTRUCTIONS Note: The Divide flow is interruptible; however, the user needs to save the context as appropriate. Note: For CORCON layout, see Table 3-3. TABLE 2-1: DSP INSTRUCTION SUMMARY Instruction Algebraic Operation ACC WB? CLR A = 0 Yes ED A = (x – y)2 No EDAC A = A + (x – y)2 No MAC A = A + (x • y) Yes MAC A = A + x2 No MOVSAC No change in A Yes MPY A = x • y No MPY.N A = – x • y No MSC A = A – x • y Yes Instruction Function DIVF Signed fractional divide: Wm/Wn →W0; Rem →W1 DIV.sd Signed divide: (Wm + 1:Wm)/Wn →W0; Rem →W1 DIV.ud Unsigned divide: (Wm + 1:Wm)/Wn →W0; Rem →W1 DIV.sw ( or DIV.s) Signed divide: Wm/Wn →W0; Rem →W1 DIV.uw ( or DIV.u) Unsigned divide: Wm/Wn →W0; Rem →W1 |
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