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I am getting an error while trying to convert a string to Long.

Long l = Long.parseLong(str);

Exception is:

java.lang.NumberFormatException: For input string: "20120828000040464018674B"
at java.lang.Long.parseLong(Long.java:415)
at java.lang.Long.parseLong(Long.java:461)
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1  
Is this hexadecimal number? –  DRCB Sep 14 '12 at 7:27

6 Answers 6

up vote 0 down vote accepted

According to the Javadoc for Long, Long.MAX_Value is defined as 2^63 - 1. The value that you've provided is greater than the given value and hence a NumberFormatException is getting thrown.

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That number is too large to represent as a long in Java. The largest possible long is 9223372036854775807L. Use BigDecimal instead.

Also, the last character is the letter B, which is invalid in any number.

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It appears to be a date/time rather than a number

String dt = "20120828000040464018674B";
SimpleDateFormat sdf = new SimpleDateFormat("yyyyMMddHHmmssSSS");
Date date = sdf.parse(dt.substring(0, 17));
int nanos = Integer.parseInt(dt.substring(17, 17 + 6));
SimpleDateFormat sdf2 = new SimpleDateFormat("yyyy/MM/dd HH:mm:ss.SSS");
System.out.printf("%s%06d%n", sdf2.format(date), nanos);

prints

2012/08/28 00:00:40.464018674
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20120828000040464018674B

Is not a long literal (B at the end)

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System.out.println(Long.MAX_VALUE);
// prints 9223372036854775807
// yours' 20120828000040464018674B
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Why dont you go for BigInteger class

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  Jagger Nov 15 '12 at 11:08

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