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ESO 208A/ESO 218 LECTURE 2 JULY 31, 2013. ERRORS MODELING OUTPUTS QUANTIFICATION TRUE VALUE APPROXIMATE VALUE.

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Presentation on theme: "ESO 208A/ESO 218 LECTURE 2 JULY 31, 2013. ERRORS MODELING OUTPUTS QUANTIFICATION TRUE VALUE APPROXIMATE VALUE."— Presentation transcript:

1 ESO 208A/ESO 218 LECTURE 2 JULY 31, 2013

2 ERRORS MODELING OUTPUTS QUANTIFICATION TRUE VALUE APPROXIMATE VALUE

3 ROUND-OFF ERROR LIMITATION OF A COMPUTER QUANTITY WITH FINITE NUMBER OF DIGITS

4 TRUNCATION ERROR NUMERICAL METHOD APPROXIMATION OF MATHEMATICAL OPERATIONS/QUANTITY

5 SIGNIFICANT FIGURES SIGNIFICANT DIGITS OF A NUMBER ARE THOSE THAT CAN BE USED WITH CONFIDENCE CERTAIN DIGITS+ESTIMATED DIGIT(1) ESTIMATED DIGIT = HALF OF SMALLEST SCALE DIVISION

6 9753.4 – 973.5  9753.45 60 – 65  ? IMPLICATIONS OF SIGNIFICANT DIGITS

7 Significant figures 0.00001845 {4} 0.0001845 {4} 0.001845 {4} 4.53*10^4 {3} 4.530*10^4 {4}

8 ACCURACY HOW CLOSELY A COMPUTED VALUE AGREES WITH THE TRUE VALUE INACCURACY ALSO KNOWN AS BIAS

9 PRECISION HOW CLOSELY INDIVIDUAL COMPUTED VALUES AGREE WITH EACH OTHER IMPRECISSION IS ALSO UNCERTAINTY

10 TERMINOLOGY E t =TRUE VALUE-APPROXIMATION ε t = TRUE ERROR*100/TRUE VALUE ε a = APPROXIMATE ERROR*100/APPROXIMATION

11 ERRORS ITERATIVE METHODS Abs(ε a ) < ε s ε s = (0.5*10^{2-n})%

12 Example e^x =1+x+x^2/2!+x^3/3!+……+x^n/n! Estimate e^0.5 Add terms until the relative approximate error falls below specified tolerance confirming to 3 significant figures

13 Solution ε s = (0.5*10^{2-n})% Use n = 3 We get ε s = 0.05% True value = e^0.5 = 1.648721….. terms result ε t ε a 1139.3- 21.59.0233.3 31.6251.447.69 41.645833333.1751.27 51.648437500.0172.158 61.648697917.00142.0158

14 NUMBERS NUMBER SYSTEM: DECIMAL, OCTAL,BINARY POSITIONAL NOTATION 86409 = 8*10^4+…….. 10101101(BINARY)= 2^7+2^5+2^3+2^2+2^0 173 (DECIMAL)

15 INTEGER SIGNED MAGNITUDE METHOD................. S ----------------NUMBER--------------------------- 1 0 0 0 0 0 0 0 1 0 1 0 1 1 0 1

16 EXAMPLE DETERMINE THE RANGE OF INTEGERS IN BASE 10 THAT CAN BE REPRESENTED ON A 16-BIT COMPUTER.

17 SOLUTION THE FIRST BIT HOLDS THE SIGN REMAINING 15 BITS CAN HAVE 0 TO 11111…. HIGHEST NUMBER IS 2^14+2^13+……. 2^15-1 = 32767 RANGE IS -32767 TO +32767 CONSIDER: 0,00000000…. AND 1,000000…. -ZERO BECOMES THE NEXT NEGATIVE NUMBER RANGE IS -32768 TO +32767

18 FLOATING POINT REPRESENTATION m*b^e m = the mantissa b = base e = exponent 156.78 = 0.15678*10^3

19 FLOATING POINT PRESENTATION................. sn 16 bits 1: sign of number 2-4: exponent; 2: sign of exponent 5-16: mantissa

20 FLOATING POINT PRESENTATION MANTISSA normalized {for leading zero digits} 1/34 = 0.029411765… 0.0294*10^0 0.2941*10^-1 ABSOLUTE VALUE OF ‘m’ IS LIMITED 1/b≤m<1

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