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MCP48FVB08 Arkusz danych(PDF) 106 Page - Microchip Technology |
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MCP48FVB08 Arkusz danych(HTML) 106 Page - Microchip Technology |
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106 / 112 page ![]() MCP48FXBX4/8 DS20006362A-page 106 2020 Microchip Technology Inc. B.11 Integral Nonlinearity (INL) The Integral Nonlinearity (INL) error is the maximum deviation of an actual transfer function from an ideal transfer function (straight line) passing through the defined end points of the DAC transfer function (after offset and gain errors have been removed). In the MCP48FXBX4/8, INL is calculated using the defined end points, DAC code 100 and code 4000. INL can be expressed as a percentage of FSR or in LSb. INL is also called ‘Relative Accuracy’. Equation B-6 shows how to calculate the INL error in LSb and Figure B-4 shows an example of INL accuracy. Positive INL means higher VOUT voltage than the ideal one. Negative INL means lower VOUT voltage than the ideal one. EQUATION B-6: INL ERROR FIGURE B-4: INL Accuracy. B.12 Differential Nonlinearity (DNL) The Differential Nonlinearity (DNL) error (see Figure B-5) is the measure of step-size between codes in an actual transfer function. The ideal step-size between codes is 1 LSb. A DNL error of zero would imply that every code is exactly 1 LSb wide. If the DNL error is less than 1 LSb, the DAC ensures monotonic output and no missing codes. Equation B-7 shows how to calculate the DNL error between any two adjacent codes in LSb. EQUATION B-7: DNL ERROR FIGURE B-5: DNL Accuracy. Where: INL is expressed in LSb. VCalc_Ideal = Code × VLSb(Measured) + VOS VOUT(Code = n) = The measured DAC output voltage with a given DAC register code. VLSb(Measured) = For Measured: (VOUT(4000) – VOUT(100))/3900. VOS = Measured offset voltage. EINL VOUT VCalc_Ideal – VLSb(Measured) ---------------------------------------------------------- = 010 001 000 Analog Output (LSb) DAC Input Code 011 111 100 101 1 2 3 4 5 6 0 7 110 Ideal Transfer Function Actual Transfer Function INL = < -1 LSb INL = 0.5 LSb INL = -1 LSb Where: DNL is expressed in LSb. VOUT(code = n) = The measured DAC output voltage with a given DAC register code. VLSb(Measured) = For Measured: (VOUT(4000) – VOUT(100))/3900. EDNL VOUT(code = n+1) VOUT(code = n) – VLSb(Measured) ---------------------------------------------------------------------------------------------------- 1 – = 010 001 000 Analog Output (LSb) DAC Input Code 011 111 100 101 1 2 3 4 5 6 0 7 DNL = 2 LSb DNL = 0.5 LSb 110 Ideal Transfer Function Actual Transfer Function |
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