233

I want to decode a Base64 encoded string, then store it in my database. If the input is not Base64 encoded, I need to throw an error.

How can I check if a string is Base64 encoded?

4
  • 1
    Why? How can the situation arise?
    – user207421
    Oct 9 '15 at 9:25
  • 2
    without specifying which programming language (and/or) Operating System you are targeting, this is a very open question
    – bcarroll
    Jan 5 '16 at 16:32
  • 7
    All that you can determine is that the string contains only characters that are valid for a base64 encoded string. It may not be possible to determine that the string is the base64 encoded version of some data. for example test1234 is a valid base64 encoded string, and when you decode it you will get some bytes. There is no application independent way of concluding that test1234 is not a base64 encoded string. Feb 10 '16 at 11:56
  • play.golang.org/p/RnEBFCJ9h0
    – BentCoder
    Sep 26 '19 at 15:29

22 Answers 22

290

You can use the following regular expression to check if a string constitutes a valid base64 encoding:

^([A-Za-z0-9+/]{4})*([A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)?$

In base64 encoding, the character set is [A-Z, a-z, 0-9, and + /]. If the rest length is less than 4, the string is padded with '=' characters.

^([A-Za-z0-9+/]{4})* means the string starts with 0 or more base64 groups.

([A-Za-z0-9+/]{4}|[A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)$ means the string ends in one of three forms: [A-Za-z0-9+/]{4}, [A-Za-z0-9+/]{3}= or [A-Za-z0-9+/]{2}==.

19
  • 15
    Just wanted to verify so please help with my question : What is the guarantee that this regex will always refers to only base64 string?? If there is any string having no space and it is multiple of 4 characters, then will that string be considered as base64 string????
    – DShah
    Oct 1 '12 at 10:11
  • 4
    Then it is a valid base64 string which can be decoded. You could add a minimum length constraint; for example, instead of zero or more repetitions of groups of four, require (say) four or more. It depends on your problem, too; if your users often enter a single word in a language with long words and pure ASCII (Hawaiian?) it's more error-prone than if non-base64 input typically contains spaces, punctuation, etc.
    – tripleee
    Nov 22 '12 at 21:43
  • 69
    This only tell that an input could have been a b64 encoded value, but it does not tell whether or not the input is actually a b64 encoded value. In other words, abcd will match, but it is not necessarily represent the encoded value of rather just a plain abcd input May 19 '13 at 10:10
  • 4
    Your regexp is incorrect, since it does not match the empty string, with is the base64 encoding of zero-length binary data according to RFC 4648.
    – reddish
    Feb 19 '17 at 16:53
  • 7
    @Adomas, "pass" is a perfectly valid base64 string, that decodes into the sequence of bytes 0xa5, 0xab and 0x2c. Why to discard it a priori, if you don't have more context to decide? Nov 22 '18 at 8:57
61

If you are using Java, you can actually use commons-codec library

import org.apache.commons.codec.binary.Base64;

String stringToBeChecked = "...";
boolean isBase64 = Base64.isArrayByteBase64(stringToBeChecked.getBytes());

[UPDATE 1] Deprecation Notice Use instead

Base64.isBase64(value);

   /**
     * Tests a given byte array to see if it contains only valid characters within the Base64 alphabet. Currently the
     * method treats whitespace as valid.
     *
     * @param arrayOctet
     *            byte array to test
     * @return {@code true} if all bytes are valid characters in the Base64 alphabet or if the byte array is empty;
     *         {@code false}, otherwise
     * @deprecated 1.5 Use {@link #isBase64(byte[])}, will be removed in 2.0.
     */
    @Deprecated
    public static boolean isArrayByteBase64(final byte[] arrayOctet) {
        return isBase64(arrayOctet);
    }
8
  • 22
    from the documentation: isArrayByteBase64(byte[] arrayOctet) Deprecated. 1.5 Use isBase64(byte[]), will be removed in 2.0.
    – Avinash R
    Dec 5 '13 at 4:32
  • 8
    You can use also Base64.isBase64(String base64) instead of converting it to byte array yourself.
    – Saša
    Feb 27 '14 at 12:00
  • 5
    Sadly, based on documentation: commons.apache.org/proper/commons-codec/apidocs/org/apache/… : "Tests a given String to see if it contains only valid characters within the Base64 alphabet. Currently the method treats whitespace as valid." This means that this methods has some false positives like "whitespace" or numbers ("0", "1"). Feb 2 '15 at 19:23
  • 5
    This answer is wrong because given stringToBeChecked="some plain text" then it sets boolean isBase64=true even though it's not a Base64 encoded value. Read the source for commons-codec-1.4 Base64.isArrayByteBase64() it only checks that each character in the string is valid to be considered for Base64 encoding and allows white space.
    – Brad
    Apr 27 '17 at 11:30
  • 1
    @Ajay, politicalstudent is a valid base64 string, it decodes into the sequence: a6 89 62 b6 27 1a 96 cb 6e 75 e9 ed Nov 22 '18 at 9:01
52

Well you can:

  • Check that the length is a multiple of 4 characters
  • Check that every character is in the set A-Z, a-z, 0-9, +, / except for padding at the end which is 0, 1 or 2 '=' characters

If you're expecting that it will be base64, then you can probably just use whatever library is available on your platform to try to decode it to a byte array, throwing an exception if it's not valid base 64. That depends on your platform, of course.

2
  • Parsing differs from validation at least by the fact that it require memory for decoded byte array. So this is not the most effective approach in some cases. Sep 22 '19 at 12:36
  • 2
    @VictorYarema: I suggested both a validation-only approach (bullet points) and also a parsing approach (after the bullet points).
    – Jon Skeet
    Sep 22 '19 at 17:58
25

As of Java 8, you can simply use java.util.Base64 to try and decode the string:

String someString = "...";
Base64.Decoder decoder = Base64.getDecoder();

try {
    decoder.decode(someString);
} catch(IllegalArgumentException iae) {
    // That string wasn't valid.
}
5
  • 3
    yes, it's an option, but don't forget that catch is quite expensive operation in Java
    – panser
    Dec 28 '17 at 22:45
  • 7
    That is not the case anymore. Exception handling is performing pretty good. You better not forget that Java Regex is pretty slow. I mean: REALLY SLOW! It's actually faster to decode a Base64 and check that it is (not) working instead of matching the String with the above Regex. I did a rough test and Java Regex matching is around six times slower (!!) than catching an eventual exception on the decode. Jun 12 '19 at 10:57
  • With more test runs it is actually eleven times slower. It is time for a better Regex implementation in Java. Even a Regex check with the Nashorn JavaScript engine in Java is so much faster. Unbelievable. Additionally JavaScript Regex (with Nashorn) is so much more powerful. Jun 12 '19 at 11:14
  • 4
    With Java 11 (instead of Java 8) the Regex check is even 22 times slower. 🤦 (Because the Base64 decoding got faster.) Jun 12 '19 at 11:42
  • Using this approach with string "Commit" will return as a valid value that is just gibberish. So it doesn't seem to be fool proof.
    – Alain P
    Jul 28 at 15:47
16

Try like this for PHP5

//where $json is some data that can be base64 encoded
$json=some_data;

//this will check whether data is base64 encoded or not
if (base64_decode($json, true) == true)
{          
   echo "base64 encoded";          
}
else 
{
   echo "not base64 encoded"; 
}

Use this for PHP7

 //$string parameter can be base64 encoded or not

function is_base64_encoded($string){
 //this will check if $string is base64 encoded and return true, if it is.
 if (base64_decode($string, true) !== false){          
   return true;        
 }else{
   return false;
 }
}
3
  • 2
    Which language is this? The question was asked without referring to a language
    – Ozkan
    Nov 27 '14 at 10:53
  • this will not work. read the docs Returns FALSE if input contains character from outside the base64 alphabet. base64_decode
    – Aley
    Apr 30 '16 at 21:29
  • 2
    How? if input contains outside character then it is not base64, right? Feb 1 '17 at 13:16
8
var base64Rejex = /^(?:[A-Z0-9+\/]{4})*(?:[A-Z0-9+\/]{2}==|[A-Z0-9+\/]{3}=|[A-Z0-9+\/]{4})$/i;
var isBase64Valid = base64Rejex.test(base64Data); // base64Data is the base64 string

if (isBase64Valid) {
    // true if base64 formate
    console.log('It is base64');
} else {
    // false if not in base64 formate
    console.log('it is not in base64');
}
6

Try this:

public void checkForEncode(String string) {
    String pattern = "^([A-Za-z0-9+/]{4})*([A-Za-z0-9+/]{4}|[A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)$";
    Pattern r = Pattern.compile(pattern);
    Matcher m = r.matcher(string);
    if (m.find()) {
        System.out.println("true");
    } else {
        System.out.println("false");
    }
}
1
  • Thanks, it did the work. Actually am getting prepend following data:image/jpeg;base64, Removed it and working fine. Jul 7 at 15:18
6

It is impossible to check if a string is base64 encoded or not. It is only possible to validate if that string is of a base64 encoded string format, which would mean that it could be a string produced by base64 encoding (to check that, string could be validated against a regexp or a library could be used, many other answers to this question provide good ways to check this, so I won't go into details).

For example, string flow is a valid base64 encoded string. But it is impossible to know if it is just a simple string, an English word flow, or is it base 64 encoded string ~Z0

5

Check to see IF the string's length is a multiple of 4. Aftwerwards use this regex to make sure all characters in the string are base64 characters.

\A[a-zA-Z\d\/+]+={,2}\z

If the library you use adds a newline as a way of observing the 76 max chars per line rule, replace them with empty strings.

3
4

There are many variants of Base64, so consider just determining if your string resembles the varient you expect to handle. As such, you may need to adjust the regex below with respect to the index and padding characters (i.e. +, /, =).

class String
  def resembles_base64?
    self.length % 4 == 0 && self =~ /^[A-Za-z0-9+\/=]+\Z/
  end
end

Usage:

raise 'the string does not resemble Base64' unless my_string.resembles_base64?
2
/^([A-Za-z0-9+\/]{4})*([A-Za-z0-9+\/]{4}|[A-Za-z0-9+\/]{3}=|[A-Za-z0-9+\/]{2}==)$/

this regular expression helped me identify the base64 in my application in rails, I only had one problem, it is that it recognizes the string "errorDescripcion", I generate an error, to solve it just validate the length of a string.

5
  • The above regex /^.....$/.match(my_string) gives formatting error by saying 'Unmatched closing )' May 17 '18 at 14:57
  • And with 'premature end of char-class: /^(([A-Za-z0-9+/' syntax errors. May 17 '18 at 15:22
  • Nevermind fixed it by adding \ in front of every / character. May 17 '18 at 15:28
  • errorDescription is a valid base64 string, it decodes into the binary sequence of bytes (in hex): 7a ba e8 ac 37 ac 72 b8 a9 b6 2a 27. Nov 22 '18 at 9:03
  • Its worked perfect for me to check base64 encoded string. Jun 7 '19 at 8:21
1

This works in Python:

import base64

def IsBase64(str):
    try:
        base64.b64decode(str)
        return True
    except Exception as e:
        return False

if IsBase64("ABC"):
    print("ABC is Base64-encoded and its result after decoding is: " + str(base64.b64decode("ABC")).replace("b'", "").replace("'", ""))
else:
    print("ABC is NOT Base64-encoded.")

if IsBase64("QUJD"):
    print("QUJD is Base64-encoded and its result after decoding is: " + str(base64.b64decode("QUJD")).replace("b'", "").replace("'", ""))
else:
    print("QUJD is NOT Base64-encoded.")

Summary: IsBase64("string here") returns true if string here is Base64-encoded, and it returns false if string here was NOT Base64-encoded.

1

C# This is performing great:

static readonly Regex _base64RegexPattern = new Regex(BASE64_REGEX_STRING, RegexOptions.Compiled);

private const String BASE64_REGEX_STRING = @"^[a-zA-Z0-9\+/]*={0,3}$";

private static bool IsBase64(this String base64String)
{
    var rs = (!string.IsNullOrEmpty(base64String) && !string.IsNullOrWhiteSpace(base64String) && base64String.Length != 0 && base64String.Length % 4 == 0 && !base64String.Contains(" ") && !base64String.Contains("\t") && !base64String.Contains("\r") && !base64String.Contains("\n")) && (base64String.Length % 4 == 0 && _base64RegexPattern.Match(base64String, 0).Success);
    return rs;
}
2
  • 1
    Console.WriteLine("test".IsBase64()); // true
    – Langdon
    Sep 7 '18 at 20:32
  • 2
    Recommend to switch programming language to solve a problem is in general not a valid response. Nov 22 '18 at 9:04
0

There is no way to distinct string and base64 encoded, except the string in your system has some specific limitation or identification.

0

This snippet may be useful when you know the length of the original content (e.g. a checksum). It checks that encoded form has the correct length.

public static boolean isValidBase64( final int initialLength, final String string ) {
  final int padding ;
  final String regexEnd ;
  switch( ( initialLength ) % 3 ) {
    case 1 :
      padding = 2 ;
      regexEnd = "==" ;
      break ;
    case 2 :
      padding = 1 ;
      regexEnd = "=" ;
      break ;
    default :
      padding = 0 ;
      regexEnd = "" ;
  }
  final int encodedLength = ( ( ( initialLength / 3 ) + ( padding > 0 ? 1 : 0 ) ) * 4 ) ;
  final String regex = "[a-zA-Z0-9/\\+]{" + ( encodedLength - padding ) + "}" + regexEnd ;
  return Pattern.compile( regex ).matcher( string ).matches() ;
}
0

If the RegEx does not work and you know the format style of the original string, you can reverse the logic, by regexing for this format.

For example I work with base64 encoded xml files and just check if the file contains valid xml markup. If it does not I can assume, that it's base64 decoded. This is not very dynamic but works fine for my small application.

0

This works in Python:

def is_base64(string):
    if len(string) % 4 == 0 and re.test('^[A-Za-z0-9+\/=]+\Z', string):
        return(True)
    else:
        return(False)
0

Try this using a previously mentioned regex:

String regex = "^([A-Za-z0-9+/]{4})*([A-Za-z0-9+/]{4}|[A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)$";
if("TXkgdGVzdCBzdHJpbmc/".matches(regex)){
    System.out.println("it's a Base64");
}

...We can also make a simple validation like, if it has spaces it cannot be Base64:

String myString = "Hello World";
 if(myString.contains(" ")){
   System.out.println("Not B64");
 }else{
    System.out.println("Could be B64 encoded, since it has no spaces");
 }
1
  • Ok, could you please give a solution then?
    – Marco
    Jan 17 '19 at 16:08
0

if when decoding we get a string with ASCII characters, then the string was not encoded

(RoR) ruby solution:

def encoded?(str)
  Base64.decode64(str.downcase).scan(/[^[:ascii:]]/).count.zero?
end

def decoded?(str)
  Base64.decode64(str.downcase).scan(/[^[:ascii:]]/).count > 0
end
0
Function Check_If_Base64(ByVal msgFile As String) As Boolean
Dim I As Long
Dim Buffer As String
Dim Car As String

Check_If_Base64 = True

Buffer = Leggi_File(msgFile)
Buffer = Replace(Buffer, vbCrLf, "")
For I = 1 To Len(Buffer)
    Car = Mid(Buffer, I, 1)
    If (Car < "A" Or Car > "Z") _
    And (Car < "a" Or Car > "z") _
    And (Car < "0" Or Car > "9") _
    And (Car <> "+" And Car <> "/" And Car <> "=") Then
        Check_If_Base64 = False
        Exit For
    End If
Next I
End Function
Function Leggi_File(PathAndFileName As String) As String
Dim FF As Integer
FF = FreeFile()
Open PathAndFileName For Binary As #FF
Leggi_File = Input(LOF(FF), #FF)
Close #FF
End Function
0

For Flutter, I tested couple of the above comments and translated that into dart function as follows

  static bool isBase64(dynamic value) {

    if (value.runtimeType == String){
      
      final RegExp rx = RegExp(r'^([A-Za-z0-9+/]{4})*([A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)?$',
          multiLine: true,
          unicode: true,
      );

      final bool isBase64Valid = rx.hasMatch(value);

      if (isBase64Valid == true) {return true;}
      else {return false;}

    }

    else {return false;}

  }
-1

I try to use this, yes this one it's working

^([A-Za-z0-9+/]{4})*([A-Za-z0-9+/]{3}=|[A-Za-z0-9+/]{2}==)?$

but I added on the condition to check at least the end of the character is =

string.lastIndexOf("=") >= 0
3
  • Why check for =: What specification of Base64 are you using? What does end of the character mean, and how does non-negative lastIndexOf() check that?
    – greybeard
    Apr 23 '20 at 7:15
  • mostly the return of my base64 character always has = at the end Oct 8 '20 at 1:34
  • Not all base 64 encoded strings end with =, for example: rYNltxhaxFAdr3ex8JFFtyCWHNRLCKyPyYei3xo05yHJEXmh3GZQxWm0NSP3tWBkMoIqrHQibfQmYpw-i6TspDJ0M3A1Z1FRWU1wM3V3aGZ1eTViOGJk Oct 12 '20 at 1:00

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.