21

I am using Spring Boot, Spring Security, OAuth2 and JWT to authenticate my application, but I keep getting this nasty error and I don't have any idea what is wrong. My CustomDetailsService class:

@Service
public class CustomDetailsService implements UserDetailsService {

    private static final Logger logger = LoggerFactory.getLogger(CustomDetailsService.class);

    @Autowired
    private UserBO userBo;

    @Autowired
    private RoleBO roleBo;

    @Override
    public UserDetails loadUserByUsername(String username) throws UsernameNotFoundException {
        AppUsers appUsers = null;
        try {
            appUsers = this.userBo.loadUserByUsername(username);
            System.out.println("========|||=========== "+appUsers.getUsername());
        }catch(IndexOutOfBoundsException e){
            throw new UsernameNotFoundException("Wrong username");
        }catch(DataAccessException e){
            e.printStackTrace();
            throw new UsernameNotFoundException("Database Error");
        }catch(Exception e){
            e.printStackTrace();
            throw new UsernameNotFoundException("Unknown Error");
        }

        if(appUsers == null){
            throw new UsernameNotFoundException("Bad credentials");
        }
        logger.info("Username: "+appUsers.getUsername());
        return buildUserFromUserEntity(appUsers);
    }

    private User buildUserFromUserEntity(AppUsers authUsers) {
        Set<UserRole> userRoles = authUsers.getUserRoles();

        boolean enabled = true;
        boolean accountNotExpired = true;
        boolean credentialsNotExpired = true;
        boolean accountNotLocked = true;

        if (authUsers.getAccountIsActive()) {
            try {
                if(authUsers.getAccountExpired()){
                    accountNotExpired = true;
                } else if (authUsers.getAccountIsLocked()) {
                    accountNotLocked = true;
                } else {
                    if (containsRole((userRoles), roleBo.findRoleByName("FLEX_ADMIN"))){
                        accountNotLocked = false;
                    }
                }
            }catch(Exception e){
                enabled = false;
                e.printStackTrace();
            }
        }else {
            accountNotExpired = false;
        }
        // convert model user to spring security user
        String username = authUsers.getUsername();
        String password = authUsers.getPassword();

        List<GrantedAuthority> authorities = buildUserAuthority(userRoles);

        User springUser = new User(username, password,enabled, accountNotExpired, credentialsNotExpired, accountNotLocked, authorities);
        return springUser;
    }
}

OAuth2Config:

@Configuration
public class OAuth2Config extends AuthorizationServerConfigurerAdapter {

    @Autowired
    private AuthenticationManager authenticationManager;

    @Bean
    public JwtAccessTokenConverter tokenConverter() {
        JwtAccessTokenConverter tokenConverter = new JwtAccessTokenConverter();
        tokenConverter.setSigningKey(PRIVATE_KEY);
        tokenConverter.setVerifierKey(PUBLIC_KEY);
        return tokenConverter;
    }

    @Bean
    public JwtTokenStore tokenStore() {
        return new JwtTokenStore(tokenConverter());
    }

    @Override
    public void configure(AuthorizationServerEndpointsConfigurer endpointsConfigurer) throws Exception {
        endpointsConfigurer.authenticationManager(authenticationManager)
                .tokenStore(tokenStore())
                .accessTokenConverter(tokenConverter());
    }

    @Override
    public void configure(AuthorizationServerSecurityConfigurer securityConfigurer) throws Exception {
        securityConfigurer.tokenKeyAccess("permitAll()").checkTokenAccess("isAuthenticated()");
    }

    @Override
    public void configure(ClientDetailsServiceConfigurer clients) throws Exception {
        clients.inMemory()
                .withClient(CLIENT_ID)
                .secret(CLIENT_SECRET)
                .scopes("read","write")
                .authorizedGrantTypes("password","refresh_token")
                .accessTokenValiditySeconds(20000)
                .refreshTokenValiditySeconds(20000);
    }
}

SecurityConfig:

@Configuration
@EnableWebSecurity
@EnableGlobalMethodSecurity
public class SecurityConfig extends WebSecurityConfigurerAdapter {

    @Autowired
    CustomDetailsService customDetailsService;

    @Bean
    public PasswordEncoder encoder() {
        return new BCryptPasswordEncoder();
    }

    @Override
    @Autowired
    protected void configure(AuthenticationManagerBuilder authenticationManagerBuilder) throws Exception {
        authenticationManagerBuilder.userDetailsService(customDetailsService).passwordEncoder(encoder());
        System.out.println("Done...finito");
    }

    @Override
    protected void configure(HttpSecurity httpSecurity) throws Exception {
        httpSecurity.authorizeRequests()
                .anyRequest()
                .authenticated()
                .and()
                .sessionManagement()
                .sessionCreationPolicy(SessionCreationPolicy.NEVER);
    }

    @Override
    @Bean
    public AuthenticationManager authenticationManager() throws Exception {
        return super.authenticationManagerBean();
    }
}

No error message except:

Hibernate: select appusers0_.id as id1_2_, appusers0_.account_expired as account_2_2_, appusers0_.account_is_active as account_3_2_, appusers0_.account_is_locked as account_4_2_, appusers0_.bank_acct as bank_acc5_2_, appusers0_.branch_id as branch_i6_2_, appusers0_.bvn as bvn7_2_, appusers0_.create_date as create_d8_2_, appusers0_.created_by as created_9_2_, appusers0_.email as email10_2_, appusers0_.email_verified_code as email_v11_2_, appusers0_.gender as gender12_2_, appusers0_.gravatar_url as gravata13_2_, appusers0_.is_deleted as is_dele14_2_, appusers0_.lastname as lastnam15_2_, appusers0_.middlename as middlen16_2_, appusers0_.modified_by as modifie17_2_, appusers0_.modified_date as modifie18_2_, appusers0_.orgnization_id as orgniza19_2_, appusers0_.password as passwor20_2_, appusers0_.phone_no as phone_n21_2_, appusers0_.surname as surname22_2_, appusers0_.token_expired as token_e23_2_, appusers0_.username as usernam24_2_ from users appusers0_ where appusers0_.username=?
Tinubu
2018-03-31 01:42:03.255  INFO 4088 --- [nio-8072-exec-2] o.a.c.c.C.[Tomcat].[localhost].[/]       : Initializing Spring FrameworkServlet 'dispatcherServlet'
2018-03-31 01:42:03.255  INFO 4088 --- [nio-8072-exec-2] o.s.web.servlet.DispatcherServlet        : FrameworkServlet 'dispatcherServlet': initialization started
2018-03-31 01:42:03.281  INFO 4088 --- [nio-8072-exec-2] o.s.web.servlet.DispatcherServlet        : FrameworkServlet 'dispatcherServlet': initialization completed in 26 ms
2018-03-31 01:42:03.489  WARN 4088 --- [nio-8072-exec-2] o.s.s.c.bcrypt.BCryptPasswordEncoder     : Encoded password does not look like BCrypt

My entity model classes are:

@Entity
@Table(name="USERS")
@DynamicUpdate
public class AppUsers {

    @Id
    @Column(name="ID")
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    @ApiModelProperty(notes = "The user auto generated identity", required = true)
    private Long id;

    @Column(name="username")
    @ApiModelProperty(notes = "The username parameter", required = true)
    private String username;

    @Column(name="password")
    @ApiModelProperty(notes = "The password parameter", required = true)
    private String password;

    @JsonManagedReference
    @OneToMany(mappedBy="appUsers")
    private Set<UserRole> userRoles;

'''''' setters and getters
}

Role entity:

@Entity
@Table(name="ROLE")
public class Role {

    @javax.persistence.Id
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    @Column(name = "role_id", unique = true, nullable = false)
    private Long Id;

    @Column(name = "name")
    private String roleName;

   @JsonManagedReference
    @OneToMany(mappedBy="role")
    private Set<UserRole> userRoles;

   //getters and setters

}

UserRole entity:

@Entity
@Table(name="USER_ROLE")
@DynamicUpdate
public class UserRole   implements Serializable {

    private static final long serialVersionUID = 6128016096756071383L;

    @Id
    @Column(name="ID")
    @GeneratedValue(strategy = GenerationType.IDENTITY)
    @ApiModelProperty(notes = "The userrole auto generated identity", required = true)
    private long id;

    @JsonBackReference
    @ManyToOne//(fetch=FetchType.LAZY)
    private AppUsers appUsers;

    @JsonBackReference
    @ManyToOne//(fetch=FetchType.LAZY)
    private Role role;

   // getters and setters
}

My password in the database is properly encrypted Spring security BCrypt and it datatype is varchar(255) which is larger than 60.

  • @Min Hyoung Hong.. The code ran well until I need to pass the authentication credentials. the only error it throws is: (Encoded password does not look like BCrypt) – Kunle Ajiboye Mar 31 '18 at 1:18

11 Answers 11

29

BCryptPasswordEncoder shows this warning when it fails to match a raw password with an encoded password.

The hashed password might be “$2b” or “$2y” now.

And there is a bug in Spring Security that has a regex always looking for “$2a”. Put a debug point at the matches() function in the BCryptPasswordEncoder.class.

  • 6
    Im running into this problem right now. I've hashed passwords with online tools, and if hashed password starts with $2y or $2b i got 'Encoded password does not look like BCrypt'. The only way i found to avoid this error is having hashed passwords that starts with $2a – Lucas. D Oct 7 '18 at 17:49
  • 2
    FYI The Bug was tracked on GitHub: github.com/spring-projects/spring-security/issues/3320. It seems like a PR was merged in October 2018 (3 Years after Bug Report and 4 Years after BCrypt update). It will probably be released with a new Spring Security Version (5.2.0) – rwenz3l Dec 11 '18 at 8:48
  • Spring-core-security version 5.0.11, class BCryptPasswordEncoder, method "matches" using "private Pattern BCRYPT_PATTERN = Pattern .compile("\\A\\$2a?\\$\\d\\d\\$[./0-9A-Za-z]{53}");" will be fall in block: if (!BCRYPT_PATTERN.matcher(encodedPassword).matches()) { logger.warn("Encoded password does not look like BCrypt"); return false; } – Do Tat Hoan Jul 4 at 8:55
22

Can you double check your client secret is encoded?

@Override
public void configure(ClientDetailsServiceConfigurer configurer) throws Exception {
    configurer
            .inMemory()
            .withClient(clientId)
            .secret(passwordEncoder.encode(clientSecret))
            .authorizedGrantTypes(grantType)
            .scopes(scopeRead, scopeWrite)
            .resourceIds(resourceIds);
}
11

When oauth2 dependecncies moved to cloud, I started facing this issue. Earlier it was part of security framework :

<dependency>
    <groupId>org.springframework.security.oauth</groupId>
    <artifactId>spring-security-oauth2</artifactId>
</dependency>

Now it is part of cloud framework :

<dependency>
    <groupId>org.springframework.cloud</groupId>
    <artifactId>spring-cloud-starter-oauth2</artifactId>
</dependency>

So if you are using cloud dependency (Finchley.RELEASE) then you may need to encode the secret like below :

@Override
public void configure(ClientDetailsServiceConfigurer clients) throws Exception {
    clients
            .inMemory()
            .withClient("clientapp")
            .authorizedGrantTypes("password","refresh_token")
            .authorities("USER")
            .scopes("read", "write")
            .resourceIds(RESOURCE_ID)
            .secret(passwordEncoder.encode("SECRET"));
}
  • 1
    That works for Spring Boot 2 based OAuth Server – Munish Chandel Oct 21 '18 at 18:38
6

The PasswordEncoder should be set like this:

@Bean
public PasswordEncoder passwordEncoder() {
    return PasswordEncoderFactories.createDelegatingPasswordEncoder();
}
  • You're right.. but this leads to another issue java.lang.IllegalArgumentException: There is no PasswordEncoder mapped for the id "null" – PAA Jan 1 at 15:28
  • You can bCrypt client secret like {bcrypt}$2a...... Hope fully it's work! – amran_bd Jan 31 at 9:52
1

Please check if your method UserDetails loadUserByUsername(String username) returns valid UserDetail object. If Returned object is null / object with invalid values then also you will see this error.

1

BCryptPasswordEncoder does not strip the {bcrypt} id, but DelegatingPasswordEncoder do it. When I define explicitly BCryptPasswordEncoder as an encoder for DaoAuthenticationProvider it calls matches method on BCryptPasswordEncoder (without id strip), but not on DelegatingPasswordEncoder (with id strip).

1

As of today, with Spring Boot 2.1.7.RELEASE, I am still experiencing this issue. I was using some online tools which gave me hashes starting with $2b or $2y, which Spring's BCryptPasswordEncoder does not allow:

public class BCryptPasswordEncoder implements PasswordEncoder {
    private Pattern BCRYPT_PATTERN = Pattern
            .compile("\\A\\$2a?\\$\\d\\d\\$[./0-9A-Za-z]{53}");
...

Solution: use BCryptPasswordEncoder class to encode the password:

BCryptPasswordEncoder encoder = new BCryptPasswordEncoder();
System.out.println(encoder.encode("admin"));

And then:

@Autowired
public void configureGlobal(AuthenticationManagerBuilder auth)
        throws Exception {
    auth.inMemoryAuthentication()
            .withUser("admin")
            .password("{bcrypt}$2a$10$6CW1agMzVzBhxDzK0PcxrO/cQcmN9h8ZriVEPy.6DJbVeyATG5mWe")
            .roles("ADMIN");
}
0

You are likely missing this bean in your Security configuration SecurityConfig

@Bean
public DaoAuthenticationProvider getAuthenticationProvider() {
    DaoAuthenticationProvider authenticationProvider = new DaoAuthenticationProvider();
    authenticationProvider.setUserDetailsService(customDetailsService);
    authenticationProvider.setPasswordEncoder(encoder());
    return authenticationProvider;
}
  • The UserDetaulsService and the PasswordEncoder are already defined at protected void configure(AuthenticationManagerBuilder authenticationManagerBuilder). Isn't that enough? – misabelcarde Apr 1 '18 at 18:12
0

I had the same error and it was because of the datatype of the password column, this column was length blank fixed (CHARACTER), so make sure You're using a VARCHAR datatype or else change the length to 60 for you password column.

0

The best way to identify this problem "Encoded password does not look like BCrypt" is setup a break porint in class org.springframework.security.crypto.bcrypt.BCryptPasswordEncoder. And then check the root cause for the warnning.

if (!BCRYPT_PATTERN.matcher(encodedPassword).matches()) {
    logger.warn("Encoded password does not look like BCrypt");
    return false;
}
  • 1
    For my error message "Encoded password does not look like BCrypt" . The length of encode password is 60 byte. But the column password in database is 100. So I have change the column password from char to varchar to fix this issue. – Lin Chen Mar 23 at 3:00
  • my database is db2 on iseries. – Lin Chen Mar 23 at 3:05
0

use noop in secret for tests.

@Override
public void configure(ClientDetailsServiceConfigurer clients) throws Exception {
    clients.inMemory()
            .withClient("angular")
            .secret("{noop}@ngular0")
            .scopes("read", "write")
            .authorizedGrantTypes("password")
            .accessTokenValiditySeconds(1800);
}

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