1)
a) 1 Go = 10⁹ octets
7,5 × 10¹⁰ octets = (7,5 × 10¹⁰ ÷ 10⁹) Go = 7,5 × 10¹⁰⁻⁹ Go
= 7,5 × 10¹ Go
= 75 Go
b) 1 Ko = 10³ octets
17 500 octets = (17 500 ÷ 10³) Ko = 17,5 Ko
c) 1 Mo = 10⁶ octets
2,56 × 10⁸ octets = (2,56 × 10⁸ ÷ 10⁶) Mo = 2,56 × 10⁸⁻⁶ Mo
= 2,56 × 10² Mo
= 256 Mo
2)
1 Mo = 10⁶ octets donc : 4 × 10⁶ octets 4 Mo
Une photo occupe 4 Mo
(6,5 × 10²) Mo ÷ 4 Mo = 650 Mo ÷ 4 Mo = 162,5
Sur un CD-ROM on pourra enregistrer 162 photos
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Verified answer
1)
a) 1 Go = 10⁹ octets
7,5 × 10¹⁰ octets = (7,5 × 10¹⁰ ÷ 10⁹) Go = 7,5 × 10¹⁰⁻⁹ Go
= 7,5 × 10¹ Go
= 75 Go
b) 1 Ko = 10³ octets
17 500 octets = (17 500 ÷ 10³) Ko = 17,5 Ko
c) 1 Mo = 10⁶ octets
2,56 × 10⁸ octets = (2,56 × 10⁸ ÷ 10⁶) Mo = 2,56 × 10⁸⁻⁶ Mo
= 2,56 × 10² Mo
= 256 Mo
2)
1 Mo = 10⁶ octets donc : 4 × 10⁶ octets 4 Mo
Une photo occupe 4 Mo
(6,5 × 10²) Mo ÷ 4 Mo = 650 Mo ÷ 4 Mo = 162,5
Sur un CD-ROM on pourra enregistrer 162 photos