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I'm working on a simple kernel and I've been trying to implement a keyboard interrupt handler to get rid of port polling. I've been using QEMU in -kernel mode (to reduce compile time, because generating the iso using grub-mkrescue takes quite some time) and it worked just fine, but when I wanted to switch to -cdrom mode it suddenly started crashing. I had no idea why.

Eventually I've realized that when it boots from an iso it also runs a GRUB bootloader before booting the kernel itself. I've figured out GRUB probably switches the processor into protected mode and that causes the problem.

the problem: Normally I'd simply initialize the interrupt handler and whenever I'd press a key it would be handled. However when I run my kernel using an iso and pressed a key the virtual machine simply crashed. This happened in both qemu and VMWare so I assume there must be something wrong with my interrupts.

Bear in mind that the code work just fine for as long as I don't use GRUB. interrupts_init()(see below) is one of the first things called in the main() kernel function.

Essentially the question is: Is there a way to make this work in protected mode?.

A complete copy of my kernel can be found in my GitHub repository. Some relevant files:

lowlevel.asm:

section .text

global keyboard_handler_int
global load_idt

extern keyboard_handler

keyboard_handler_int:
    pushad
    cld
    call keyboard_handler
    popad
    iretd

load_idt:
    mov edx, [esp + 4]
    lidt [edx]
    sti
    ret

interrupts.c:

#include <assembly.h> // defines inb() and outb()

#define IDT_SIZE 256
#define PIC_1_CTRL 0x20
#define PIC_2_CTRL 0xA0
#define PIC_1_DATA 0x21
#define PIC_2_DATA 0xA1

extern void keyboard_handler_int(void);
extern void load_idt(void*);

struct idt_entry
{
    unsigned short int offset_lowerbits;
    unsigned short int selector;
    unsigned char zero;
    unsigned char flags;
    unsigned short int offset_higherbits;
} __attribute__((packed));

struct idt_pointer
{
    unsigned short limit;
    unsigned int base;
} __attribute__((packed));

struct idt_entry idt_table[IDT_SIZE];
struct idt_pointer idt_ptr;

void load_idt_entry(int isr_number, unsigned long base, short int selector, unsigned char flags)
{
    idt_table[isr_number].offset_lowerbits = base & 0xFFFF;
    idt_table[isr_number].offset_higherbits = (base >> 16) & 0xFFFF;
    idt_table[isr_number].selector = selector;
    idt_table[isr_number].flags = flags;
    idt_table[isr_number].zero = 0;
}

static void initialize_idt_pointer()
{
    idt_ptr.limit = (sizeof(struct idt_entry) * IDT_SIZE) - 1;
    idt_ptr.base = (unsigned int)&idt_table;
}

static void initialize_pic()
{
    /* ICW1 - begin initialization */
    outb(PIC_1_CTRL, 0x11);
    outb(PIC_2_CTRL, 0x11);

    /* ICW2 - remap offset address of idt_table */
    /*
    * In x86 protected mode, we have to remap the PICs beyond 0x20 because
    * Intel have designated the first 32 interrupts as "reserved" for cpu exceptions
    */
    outb(PIC_1_DATA, 0x20);
    outb(PIC_2_DATA, 0x28);

    /* ICW3 - setup cascading */
    outb(PIC_1_DATA, 0x00);
    outb(PIC_2_DATA, 0x00);

    /* ICW4 - environment info */
    outb(PIC_1_DATA, 0x01);
    outb(PIC_2_DATA, 0x01);
    /* Initialization finished */

    /* mask interrupts */
    outb(0x21 , 0xFF);
    outb(0xA1 , 0xFF);
}

void idt_init(void)
{
    initialize_pic();
    initialize_idt_pointer();
    load_idt(&idt_ptr);
}

void interrupts_init(void)
{
    idt_init();
    load_idt_entry(0x21, (unsigned long) keyboard_handler_int, 0x08, 0x8E);

    /* 0xFD is 11111101 - enables only IRQ1 (keyboard)*/
    outb(0x21 , 0xFD);
}

kernel.c

#if defined(__linux__)
    #error "You are not using a cross-compiler, you will most certainly run into trouble!"
#endif

#if !defined(__i386__)
    #error "This kernel needs to be compiled with a ix86-elf compiler!"
#endif

#include <kernel.h>

// These _init() functions are not in their respective headers because
// they're supposed to be never called from anywhere else than from here

void term_init(void);
void mem_init(void);
void dev_init(void);

void interrupts_init(void);
void shell_init(void);

void kernel_main(void)
{
    // Initialize basic components
    term_init();
    mem_init();
    dev_init();
    interrupts_init();

    // Start the Shell module
    shell_init();

    // This should be unreachable code
    kernel_panic("End of kernel reached!");
}

boot.asm:

bits 32
section .text
;grub bootloader header
        align 4
        dd 0x1BADB002            ;magic
        dd 0x00                  ;flags
        dd - (0x1BADB002 + 0x00) ;checksum. m+f+c should be zero

global start
extern kernel_main

start:
  mov esp, stack_space  ;set stack pointer
  call kernel_main

; We shouldn't get to here, but just in case do an infinite loop
endloop:
  hlt           ;halt the CPU
  jmp endloop

section .bss
resb 8192       ;8KB for stack
stack_space:
  • I feel for you. It is in all likelihood a bug in your own software. The issue is that the code you show doesn't really make this a minimal complete verifiable example. Its nearly impossible to say (we don't even see the keyboard handler, how you set up the GDT/LIDT etc). I'd like to be able to help. If you had this in a Git repository for example I'd be able to test it and see what I can find. I'm assuming there is too much code to publish everything in a single question? – Michael Petch Apr 2 '17 at 5:26
  • You know something looked vaguely familiar about this code until I searched my local files and discovered code that seems awfully familiar. Have you tried the code in this answer: stackoverflow.com/a/37635449/3857942 . Your file names seem very similar to the ones in the question I answered last year. My answer includes a minimal complete set of files. I wonder if that code works when you boot from an ISO – Michael Petch Apr 2 '17 at 5:41
  • Yes, GRUB will switch into protected mode when booting multibbot compliant kernel. If you ever relaod any of the selector registers (CS, DS, ES) with a multiboot compliant kernel you need to make sure you set up your own GDT as well. If you don't change them then you are okay. – Michael Petch Apr 2 '17 at 5:47
  • If your code is anything like that answer of mine then I have a suspicion I know what may be wrong and it may even be related to my last comment about the GDT. In the Multiboot spec there is this important note in the Multiboot docs ‘GDTR’ Even though the segment registers are set up as described above, the ‘GDTR’ may be invalid, so the OS image must not load any segment registers (even just reloading the same values!) until it sets up its own ‘GDT’. . Possibility is failure is happening upon an IRQ firing as the CS selector gets loaded when an interrupt occurs. Bad GDTR could cause failure – Michael Petch Apr 2 '17 at 6:50
  • It is 1:30am here. I was able to reproduce what is probably your problem. My best guess is you need to manually setup your own GDT before you setup the IDT. It appears the QEMU multiboot loader (used with -kernel) is more forgiving about the GDTR/GDT . I was able to hack in a GDT and it seemed to resolve the issue. Later in the day I'll update my answer at the other link. – Michael Petch Apr 2 '17 at 7:29
3

I had a hunch last night as to why loading through GRUB and loading through the Multiboot -kernel feature of QEMU might not work as expected. That is captured in the comments. I have managed to confirm the findings based on more of the source code being released by the OP.

In the Mulitboot Specification there is a note about the GDTR and the GDT with regards to modifying selectors that is relevant:

GDTR

Even though the segment registers are set up as described above, the ‘GDTR’ may be invalid, so the OS image must not load any segment registers (even just reloading the same values!) until it sets up its own ‘GDT’.

An interrupt routine could alter the CS selector causing issues.

There is another concern and most likely the root cause of problems. The Multiboot specification also states this about the selectors it creates in its GDT:

‘CS’
Must be a 32-bit read/execute code segment with an offset of ‘0’ and a
limit of ‘0xFFFFFFFF’. The exact value is undefined. 
‘DS’
‘ES’
‘FS’
‘GS’
‘SS’
Must be a 32-bit read/write data segment with an offset of ‘0’ and a limit
of ‘0xFFFFFFFF’. The exact values are all undefined. 

Although it says what types of descriptors will be set up it doesn't actually specify that a descriptor has to have a particular index. One Mulitboot loader may have a Code segment descriptor at index 0x08 and another bootloader may use 0x10. This is of particular relevance when you look at one line of your code:

load_idt_entry(0x21, (unsigned long) keyboard_handler_int, 0x08, 0x8E);

This creates an IDT descriptor for interrupt 0x21. The third parameter 0x08 is the Code selector the CPU needs to use to access the interrupt handler. I discovered this works on QEMU where the code selector is 0x08, but in GRUB it appears to be 0x10. In GRUB the 0x10 selector points at a non-executable Data segment and this will not work.

To get around all these problems the best thing to do is set up your own GDT shortly after starting up your kernel and before setting up an IDT and enabling interrupts. There is a tutorial on the GDT in the OSDev Wiki if you want more information.

To set up a GDT I'll simply create an assembler routine in lowlevel.asm to do it by adding a load_gdt function and data structures:

global load_gdt

; GDT with a NULL Descriptor, a 32-Bit code Descriptor
; and a 32-bit Data Descriptor
gdt_start:
gdt_null:
    dd 0x0
    dd 0x0

gdt_code:
    dw 0xffff
    dw 0x0
    db 0x0
    db 10011010b
    db 11001111b
    db 0x0

gdt_data:
    dw 0xffff
    dw 0x0
    db 0x0
    db 10010010b
    db 11001111b
    db 0x0
gdt_end:

; GDT descriptor record
gdt_descriptor:
    dw gdt_end - gdt_start - 1
    dd gdt_start

CODE_SEG equ gdt_code - gdt_start
DATA_SEG equ gdt_data - gdt_start

; Load GDT and set selectors for a flat memory model
load_gdt:
    lgdt [gdt_descriptor]
    jmp CODE_SEG:.setcs              ; Set CS seelctor with far JMP
.setcs:
    mov eax, DATA_SEG                ; Set the Data selectors to defaults
    mov ds, eax
    mov es, eax
    mov fs, eax
    mov gs, eax
    mov ss, eax
    ret

This creates and loads a GDT that has a NULL Descriptor at index 0x00, a 32-bit code descriptor at 0x08, and a 32-bit data descriptor at 0x10. Since we are using 0x08 as the code selector this matches what you specify as a code selector in your IDT entry initialization for interrupt 0x21:

load_idt_entry(0x21, (unsigned long) keyboard_handler_int, 0x08, 0x8E);

The only other thing is that you'll need to amend your kernel.c to call load_gdt. One can do that with something like:

extern void load_gdt(void);

void kernel_main(void)
{
    // Initialize basic components
    load_gdt();
    term_init();
    mem_init();
    dev_init();
    interrupts_init();

    // Start the Shell module
    shell_init();

    // This should be unreachable code
    kernel_panic("End of kernel reached!");
}
  • Thank you very much. Your answer came unexpectedly fast and it perfectly explained the problem. However I've noticed a strange phenomenon. In both QEMU and VMWare the VGA cursor disappeared when booting your modified code. I have confirmed that this doesn't happen in QEMU in -kernel mode. – natiiix Apr 2 '17 at 20:24
  • I'd have to look at the cursor issue a bit later when I have a bit more time. Likely my code isn't the cause, but probably something related with how GRUb sets up the graphics mode (I am just guessing at this point until I have time to look) – Michael Petch Apr 2 '17 at 20:28
  • It indeed seems that this happens even when I comment out all the new code. I don't remember this happening before, but it's possible that I simply haven't noticed it somehow. GRUB sure brings in a bunch of mysteries for me. – natiiix Apr 2 '17 at 20:45
  • @user3043260 : Until I find a good solution, you can probably get the cursor to show by changing grub.cfg by setting the the timeout value from 0 to 1. This is a quick hack – Michael Petch Apr 2 '17 at 22:15
  • I've added that only very recently, so you think that might be the problem? It would explain why I haven't noticed for sure. Thanks for your time, man. I appreciate it tons! – natiiix Apr 3 '17 at 5:48

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