¼±Åà - È­»ìǥŰ/¿£ÅÍŰ ´Ý±â - ESC

 
"image selected in vivo spectroscopy"¿¡ ´ëÇÑ °Ë»ö °á°úÀÔ´Ï´Ù. °Ë»ö °á°ú º¸´Â µµÁß¿¡ Tab ۸¦ ´©¸£½Ã¸é °Ë»ö âÀÌ ¼±Åõ˴ϴÙ.
¾Ë±â½¬¿î ÀÇÇпë¾îÇ®ÀÌÁý, ¼­¿ïÀÇ´ë ±³¼ö ÁöÁ¦±Ù, °í·ÁÀÇÇÐ ÃâÆÇ À¯»ç °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
¿µ¹® in vivo ÇÑ±Û »ýü³»
¼³¸í   
  »ýü ³» È¤Àº ¼¼Æ÷³»¿¡¼­ ÀϾ´Â °úÁ¤À̳ª ¹ÝÀÀ
´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • nuclear magnetic resonance spectroscopy
    ÇÙÀÚ±â°ø¸íºÐ±¤¹ý
  • spectroscopy
    1. ºÐ±¤ÇÐ 2. ºÐ±¤¹ý
  • ex vivo
    »ýü¹Û-, ü¿Ü-
  • in vivo
    »ýü³»
  • in vivo bioequivalence
    »ýü³»»ý¹°ÇÐÀûµ¿µî¼º
  • in vivo fertilization
    ü³»Àΰø¼öÁ¤
  • accidental image
    ˆȗ
  • axial image
    °¡·Î¿µ»ó, Ãà¸é¿µ»ó
  • baseline image
    ±âÁØ¿µ»ó
  • bistable image
    À̰èÁ¶¿µ»ó, ÀÌ»öµµ¿µ»ó
  • body image
    ½Åü»ó
  • body image agnosia
    ÀÚ¼¼ÀνĺҴÉ(Áõ), ÀÚ¼¼½ÇÀÎÁõ
  • computerized image analysis
    ÄÄÇ»ÅÍ¿µ»óºÐ¼®
  • coronal image
    °ü»ó¿µ»ó, Á¿켼·Î¿µ»ó
  • dynamic verification image
    µ¿Àû°ËÁõ¿µ»ó
´ëÇÑÀÇÇù Çʼö ÀÇÇпë¾îÁý »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 7 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • image
    ¿µ»ó, »ó, ¸ð½À
  • body image
    ½Åü»ó, ¸ö¸ð¾ç»ó
  • coronal image
    Á¿켼·Î¿µ»ó, °ü»ó¿µ»ó
  • enhanced image
    Á¶¿µÁõ°­¿µ»ó
  • proton density weighted image
    ¾çÀڹеµ°­Á¶¿µ»ó
  • sagittal image
    ¾ÕµÚ¼¼·Î¿µ»ó, ½Ã»ó¿µ»ó
  • static image
    Á¤Áö¿µ»ó
¿¾ ´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • image selected iv vivo spectroscopy
    ¿µ»ó¼±ÅûýüºÐ±¤¹ý
  • ex vivo
    »ýü¹Û-
  • in vivo
    »ýü³» »ýü³»
  • depth resolved surface coil spectroscopy
    ±íÀÌÇØ°áÇ¥¸éÄÚÀϺб¤¹ý
  • diffusion spectroscopy
    È®»êºÐ±¤¹ý
  • magnetic resonance spectroscopy
    ÀÚ±â°ø¸íºÐ±¤¹ý
  • nuclear magnetic resonance spectroscopy
    ÇÙÀÚ±â°ø¸íºÐ±¤¹ý
  • spectroscopy
    ºÐ±¤¹ý
  • stimulated echo spectroscopy
    Àڱظ޾Ƹ®ºÐ±¤¹ý
  • accidental image
    (¢¡afterimage) ÀÜ»ó
  • axial image
    °¡·Î¿µ»ó, Ãà¸é¿µ»ó
  • body image agnosia
    (¢¡autotopagnosia) ÀÚ¼¼ÀνĺҴÉÁõ
  • computerized image analysis
    ÄÄÇ»ÅÍ¿µ»óºÐ¼®
  • image amplification
    ¿µ»óÁõÆø
  • image amplifier
    ¿µ»óÁõÆø±â
¿¾ ´ëÇÑÀÇÇù 2 ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • image selected in vivo spectroscopy (ISIS)
    ¿µ»ó ¼±Åà »ýü ºÐ±¤¹ý
¿¾ ´ëÇÑÀÇÇù 2 ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • MR spectroscopy
    MR ºÐ±¤¹ý
  • P-31 NMR spectroscopy
    P-31 ÀÚ±â°ø¸í ºÐ±¤¹ý(¼ú)
  • in vivo
    »ýü³»(ßæô÷Ò®)
  • in vivo
    »ýü³»
  • in vivo dosimetry
    »ýü³»¼±·®ÃøÁ¤¹ý
  • Purkinje image
    Ǫ¸£Å°´Ï¿¡»ó
  • T1 weighted image (T1WI)
    T1 °­Á¶¿µ»ó
  • T2 weighted image
    T2 °­Á¶ ¿µ»ó
  • accidental image
    ˆȗ
  • acoustic image
    û»ó
  • gadolinium enhanced image
    °¡µ¹¸®´½ Á¶¿µÁõ°­ ¿µ»ó
  • heavily T-2 weighted image
    Áß T-2 °­Á¶ ¿µ»ó
  • iconic image
    »ó»ó(ßÌßÀ)
  • idealized image
    ÀÌ»óÈ­ »ó,ÀÌ»ó»ó(ìµßÌßÚ)
  • image
    »ó, ¿µ»ó
¿¾ ´ëÇÑÀÇÇù 3 ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • image selected in vivo spectroscopy (ISIS)
    ¿µ»ó ¼±Åà »ýü ºÐ±¤¹ý
¿¾ ´ëÇÑÀÇÇù 3 ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • ex vivo<³ª>
    »ýü(ßæô÷)¹ÛÀÇ.
  • in vivo
    »ýü³»
  • in vivo
    »ýü³»(ßæô÷Ò®)
  • in vivo dosimetry
    »ýü³»¼±·®ÃøÁ¤¹ý
  • atomic absorption spectroscopy
    ¿øÀÚÈí±¤ ºÐ±¤ºÐ¼®¹ý(¡­ÝÂÎÃÝÂà°Ûö).
  • depth resolved surface coil spectroscopy (DRESS)
    ±íÀÌ ÇØ°á Ç¥¸é ÄÚÀÏ ºÐ±¤¹ý
  • diffusion spectroscopy
    È®»ê ºÐ±¤¹ý
  • magnetic resonance (MR) spectroscopy
    ÀÚ±â°ø¸íºÐ±¤¹ý
  • magnetic resonance spectroscopy
    ÀÚ±â°ø¸í¿µ»óºÐ±¤°æ°Ë»ç
  • magnetic resonance spectroscopy(MRS)
    ÀÚ±â°ø¸íºÐ±¤°Ë»ç(í¸Ñ¨ÍìÙ°ÝÂÎÃËþÞÛ)
  • mass spectroscopy with gas
    °¡½ºÁú·®ÃøÁ¤¹ý
  • proton MR spectroscopy
  • spectroscopy
    ºÐ±¤¹ý(¼ú)
  • spectroscopy
    ºÐ±¤°æ°Ë»ç¹ý
  • stimulated echo spectroscopy
    ÀÚ±Ø ¿¡ÄÚ ºÐ±¤¹ý
´ëÇÑ»ýÈ­ÇкÐÀÚ»ý¹°ÇÐȸ ¿ë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 12 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • in vivo
    »ýü³»(ßæô÷Ò®)
  • in vivo marker
    »ýü³» Ç¥Áö(ßæô÷Ò®øöò½)
  • latent image
    Àá»ó(íÖßÀ)
  • mirror image
    °æ»ó(ÌðßÀ)
  • fluctuation spectroscopy
    ¿äµ¿ ºÐ±¤±¤µµ¹ý(èôÔÑÝÂÎÃÎÃÓøÛö)
  • Fourier transform infrared spectroscopy
    Ǫ¸®¿¡ º¯È¯(ܨüµ) Àû¿Ü¼±ºÐ±¤±¤µµ¹ý(îåèâàÊÝÂÎÃÎÃÓøÛö)
  • hybrid-selected translation
    Æ¢±â-¼±º°(àÔܬ) ¹ø¿ª(Ûèæ»)
  • reflection-absorption infrared spectroscopy
    ¹Ý»çÈí¼ö Àû¿Ü¼± ºÐ±¤±¤µµ°è (ÚãÞÒýåâ¥îåèâàÊÝÂÎÃÎÃÓøÍª)
  • resonance Raman spectroscopy
    °ø¸í ¶ó¸¸ ºÐ±¤¹ý(ÝÂÎÃÛö)
  • selected ion monitoring
    ¼±ÅÃ(àÔ÷É) À̿ ¸ð´ÏÅ͹ý(Ûö)
  • selected marker
    ¼±ÅÃÇ¥Áö(àÔ÷Éøöò½)
  • selected medium
    "¼±ÅùèÁö(àÔ÷ÉÛÆò¢), ¼±Åà ¹è¾ç¾×(àÔ÷ÉÛÆå×äû)"
KI ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • image selected in vivo spectroscopy [=ISIS]
    ¿µ»ó¼±ÅûýüºÐ±¤¹ý
KI ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • in vivo
    »ýü³»
  • in vivo analysis
    »ýü³»ºÐ¼®
  • depth resolved surface coil spectroscopy [=DRESS]
    ±íÀÌÇØ°áÇ¥¸éÄÚÀϺб¤¹ý
  • diffusion spectroscopy
    È®»êºÐ±¤¹ý
  • magnetic resonance [=MR] spectroscopy
    ÀÚ±â°ø¸íºÐ±¤¹ý
  • P-31 NMR spectroscopy
    P-31ÀÚ±â°ø¸íºÐ±¤¹ý(¼ú)
  • proton MR spectroscopy
    ¾çÀÚÀÚ±â°ø¸íºÐ±¤¼ú
  • spectroscopy
    ºÐ±¤¹ý(¼ú)
  • stimulated echo spectroscopy
    Àڱؿ¡Äںб¤¹ý
  • axial image
    Ãà(¸é)¿µ»ó
  • baseline image
    ±âÁØ ¿µ»ó
  • computerized image analysis
    ÄÄÇ»ÅÍ¿µ»óºÐ¼®
  • delayed image
    Áö¿¬¿µ»ó
  • digital image
    µðÁöÅпµ»ó
  • digital image communication in medicine(DICOM)
    ÀÇÇпµ»óÀü¼Û±Ô°Ý
KMLE ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 1
ISIS image selected in vivo spectroscopy; imaging science and information system; information system-imag...
SIM selected ion monitoring; Society of Industrial Microbiology
SMB selected mucosal biopsy; standard mineral base
GnRH Gonadotropin Releasing Hormone  [HP 1898, 2034]
  = LHRH
  = Go...
IV ichthyosis vulgaris; initial visit; interventricular; intervertebral; intravaginal; intravascular; i...
KMLE ÀÚµ¿ÃßÃâ ÀÇÇоà¾î »çÀü À¯»ç °Ë»ö °á°ú : 5 ÆäÀÌÁö: 1
ISIS Image Selected in Vivo Spectroscopy
SIM Selected Ion Monitoring
SRM Selected reaction monitoring
GC--MS--SIM gas chromatography--mass spectrometry--selected ion monitoring
GC-SIM gas chromatography selected ion monitoring
°æºÏ´ë Ä¡°ú´ëÇÐ ±¸°­³»°ú ±³½Ç »çÀü ¸ÂÃã °Ë»ö °á°ú : 1 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • image selected in vivo spectroscopy
    ¿µ»ó ¼±Åà »ýü ºÐ±¤¹ý
°æºÏ´ë Ä¡°ú´ëÇÐ ±¸°­³»°ú ±³½Ç »çÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ¼³¸í
  • selected renal arteriography
    ¼±ÅÃÀû ½Åµ¿¸Æ Á¶¿µ¹ý
    ´ëÅ𠵿¸Æ¿¡¼­ Ä«Å×Å͸¦ »ðÀÔÇØ Åõ½ÃÇÏ¿¡¼­ ¼±ÅÃÀûÀ¸·Î ½Åµ¿¸Æ¿¡ Á¶¿µÁ¦¸¦ ÁÖÀÔÇÏ´Â ¹æ¹ý.
  • atomic absorption spectroscopy
    ¿øÀÚ Èí±¤ ºÐ±¤ ºÐ¼®
  • ex vivo
    »ýü ¹ÛÀÇ
  • in vivo analysis
    »ýü³» ºÐ¼®
  • in-vivo root canal treatment
    »ýü³» ±Ù°ü Ä¡·á
  • P-31 NMR spectroscopy
    P-31 Àڱ⠰ø¸í ºÐ±¤¹ý, P-31 Àڱ⠰ø¸í ºÐ±¤¼ú
  • temporal spectroscopy
    ¼ø°£ ºÐ±¤ ºÐ¼®±â
  • after image
    ˆȗ
    ½Ã°¢ÀÇ ¿¹¹Î¼ºÀ¸·Î ÀÎÇØ ¿ÜºÎ·ÎºÎÅÍÀÇ ÀÚ±ØÀÌ »ç¶óÁø ÈÄ¿¡µµ ³²¾ÆÀÖ´Â ÈïºÐÀ¸·Î ÀÎÇØ ½Ã ÀÚ±ØÀÌ ¿¬ÀåµÇ°Å³ª »õ·Î¿öÁö´Â ´À³¦.
  • axial image
    Ãà ¿µ»ó, Ãà¸é ¿µ»ó
  • body image agnosia
    ½Åü»ó ½ÇÀÎÁõ
  • computerized image analysis
    ÄÄÇ»ÅÍ ¿µ»ó ºÐ¼®
  • double image
    º¹»ó
  • frequency-modulation image
    ÁÖÆÄ ¼ö Á¶Á¤ ¿µ»ó
  • image
    »ó, ½É»ó, ¿µ»ó, À̹ÌÁö
    Áø½ÇÀÇ ´ë»ó¿¡ ´Ù¼Ò³ª¸¶ ºñ½ÁÇÑ ½É»óÀ̳ª °³³ä.
  • image amplifier
    ¿µ»ó ÁõÆø±â
CancerWEB ¿µ¿µ ÀÇÇлçÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
Selected Area Electron Diffraction <technique> In this diffraction mode an aperture is used to define the area from which a diffraction pattern is to be recorded from a thin sample. This aperture is typically located in an image plane below the sample.
Selected Area Electron Diffraction patterns are simple spot patterns and are of use in phase determination (lattice spacing measurement) and defect analysis (sample orientation).
Acronym: SAED
(05 Aug 1998)
in vivo Within the living body.
(18 Nov 1997)
in vivo fertilization Fertilization of a ripe egg within the distal fallopian tube of a fertile donor female (rather than in an artificial medium), for subsequent nonsurgical transfer to an infertile recipient.
(05 Mar 2000)
absorption spectroscopy <investigation> This is the use of a spectrophotometer to measure the ability of particles (solutes) in a solution to absorb light through a range of specific wavelengths.
Every compound absorbs light differently, so absorption spectra can be used to identify compounds, measure concentrations, and determine reaction rates.
(15 Jan 1998)
magnetic resonance spectroscopy Detection and measurement of the resonant spectra of molecular species in a tissue or sample.
(05 Mar 2000)
Parallel Electron Energy Loss Spectroscopy <technique> Electron energy loss spectroscopy analyses the inelastically scattered electrons present in the beam after it has been transmitted through the sample. An electron energy loss spectrum typically consists of a monatomic decreasing background on which are superimposed a number of peaks. Each peak is characteristic of the scattering process that has occurred in the sample. The peaks can be used to obtain information about the chemical composition and electronic structure of the sample. Electron energy loss spectra are acquired typically in a magnetic sector spectrometer located under the camera chamber of the transmission electron microscope. Spatial resolution is typically limited by the minimum probe diameter of the microscope. Electron energy loss spectroscopy tends to be complimentary to EDS in that it can be used to analyse very thin samples of low Z materials.
Acronym: PEELS
(05 Aug 1998)
clinical spectroscopy Spectroscopic examination of specimens of living tissue, including fluids removed therefrom.
Synonym: clinical spectroscopy.
Origin: bio-+ L. Spectrum, image, + G. Skopeo, to examine
(05 Mar 2000)
spectroscopy <procedure> Spectroscopy is the science of measuring the emission and absorption of different wavelengths (spectra) of visible and non-visible light, this can be done via a spectroscope, which consists of a slit, prism, collimator lens, object lens, and a grating.
(09 Oct 1997)
spectroscopy, fourier transform infrared A spectroscopic technique in which a range of wavelengths is presented simultaneously with an interferometer and the spectrum is mathematically derived from the pattern thus obtained.
(12 Dec 1998)
spectroscopy, mossbauer A spectroscopic technique which uses the mossbauer effect (inelastic scattering of gamma radiation resulting from interaction with heavy nuclei) to monitor the small variations in the interaction between an atomic nucleus and its environment. Such variations may be induced by changes in temperature, pressure, chemical state, molecular conformation, molecular interaction, or physical site. It is particularly useful for studies of structure-activity relationship in metalloproteins, mobility of heavy metals, and the state of whole tissue and cell membranes.
(12 Dec 1998)
spectroscopy, near-infrared A noninvasive technique that uses the differential absorption properties of haemoglobin and myoglobin to evaluate tissue oxygenation and indirectly can measure regional haemodynamics and blood flow. Near-infrared light (nir) can propagate through tissues and at particular wavelengths is differentially absorbed by oxgenated vs. Deoxygenated forms of haemoglobin and myoglobin. Illumination of intact tissue with nir allows qualitative assessment of changes in the tissue concentration of these molecules. The analysis is also used to determine body composition.
(12 Dec 1998)
infrared spectroscopy The study of the specific absorption in the infrared region of the electromagnetic spectrum; used in the study of the chemical bonds within molecules.
(05 Mar 2000)
electron spin resonance spectroscopy <radiology> A technique applicable to the wide variety of substances which exhibit paramagnetism because of the magnetic moments of unpaired electrons.
The spectra are useful for detection and identification, for determination of electron structure, for study of interactions between molecules, and for measurement of nuclear spins and moments. electron nuclear double resonance (endor) spectroscopy is a variant of the technique which can give enhanced resolution. Electron spin resonance analysis can now be used in vivo, including imaging applications.
(12 Dec 1998)
Energy Dispersive Spectroscopy <technique> A microanalytical technique that is based on the characteristic X-ray peaks that are generated when the high energy beam of the electron microscope interacts with the specimen.
Each element yields a characteristic spectral fingerprint that may be used to identify the presence of that element within the sample. The relative intensities of the spectral peaks may be used to determine the relative concentrations of each element in the specimen.
The X-ray signal is detected by a solid-state silicon-lithium detector and the construction and efficiency of this detector sets a lower limit on the atomic number that may be detected. Generally elements heavier than carbon (Z=5) are detectable.
Acronym: EDS
(05 Aug 1998)
Abbe theory of image formation <optics, physics> Abbe's theory is based on the fact that a non-self-luminous particle, which is illuminated by an extraneous source, gives rise to diffracted light rays, in addition to the dioptric pencil.
He stated that to form a good microscopical image as many of the diffracted rays as possible should be intercepted by the objective. With closely ruled lines, his theory is easily demonstrated by observing the back lens of the objective, for here the diffracted rays can be observed directly if the aperture diaphragm is closed. It can be shown that, when the illumination is arranged to exclude the diffracted images, resolution is lost.
(11 Mar 1998)
ÇÑ¿µ/¿µÇÑ »çÀü À¯»ç °Ë»ö °á°ú : 15 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
  • spectroscopy
    ºÐ±¤ÇÐ
  • selected
    ¼±¹ßµÈ
  • selected
    ¼±ÅõÈ(chosen);¼±¹ßµÈ(picked out);Á¤¼±µÈ
  • image
    »ó,À̹ÌÁö,»ó»óÇÏ´Ù,»óÀ» ¸¸µé´Ù
  • corporate image
    ±â¾÷ À̹ÌÁö 
  • double image
    ÀÌÁß»ó(»êÀÌ ÀáÀÚ´Â »çÀÚ·Î º¸ÀÌ´Â µî)
  • father image(figure)
    ÀÌ»óÀûÀÎ ¾Æ¹öÁö»óÀ» Áö´Ñ »ç¶÷
  • ghost image
    ´ÙÁß»ó
  • graven image
    Á¶»ó;¿ì»ó
  • image
    ÃÊ»ó;»ó;È­»ó;Á¶»ó;¼º»ó;¿ì»ó;ÇüÅÂ;¸ð½À;´àÀº »ç¶÷(°Í);(°Å¿ï¶Ç´Â ¸Á¸·»óÀÇ)»ó;¿µ»ó;»ó¡;È­½Å;ÀüÇü(type);(°³ÀÎÀÌ °¡Áö´Â)À̹ÌÁö;Àλó;(´ëÁßÀÌ °¡Áö´Â) À̹ÌÁö;°ü³ä;(»ç½ÇÀûÀÎ)¹¦»ç;Ç¥Çö;(½É)½É»ó;Ç¥»ó;°³³ä(idea)(¼ö) Çü»ó;À̹ÌÁö;..ÀÇ »óÀ» ¸¸µé´Ù(±×¸®´Ù)
  • image advertising
    À̹ÌÁö ±¤°í(»óǰÀÇ Æ¯¼ºÀ» °­Á¶Çϱ⠺¸´Ù ¼ºÀû ¸Å·Â,¼º°ø°¨ µî ±àÁ¤Àû À̹ÌÁö¸¦ »óǰ¿¡ °áºÎ½ÃŰ´Â ±¤°í)
  • image builder
    À̹ÌÁö¸¦ Çü¼ºÇÏ´Â »ç¶÷(°Í)
  • image building
    (±¤°íµî¿¡ ÀÇÇÑ)À̹ÌÁö Çü¼º
  • image converter
    (ÀüÀÚ)¿µ»óº¯È¯°ü 9
  • image dissector
    (¶óµð¿À,TV)ÇØ»ó°ü
ÀÌ ¾Æ·¡ ºÎÅÍ´Â °á°ú°¡ ¾ø½À´Ï´Ù.
KMLE ¾àǰ/ÀǾàǰ ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • Á¦Ç°¸í
    ¼ººÐ/ÇÔ·®
    ±¸ºÐ/º¸Çè±Þ¿©
KMLE ¾àǰ/ÀǾàǰ À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • Á¦Ç°¸í
    ¼ººÐ/ÇÔ·®
    ±¸ºÐ/º¸Çè±Þ¿©
¾Ë±â½¬¿î ÀÇÇпë¾îÇ®ÀÌÁý, ¼­¿ïÀÇ´ë ±³¼ö ÁöÁ¦±Ù, °í·ÁÀÇÇÐ ÃâÆÇ ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑÀÇÇù Çʼö ÀÇÇпë¾îÁý »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
¿¾ ´ëÇÑÀÇÇù ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑÇØºÎÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑÇØºÎÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇѽŰæ¿Ü°úÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ÇÑÀÚ
´ëÇѽŰæ¿Ü°úÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
    ÇÑÀÚ
´ëÇѱâ»ýÃæÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇѱâ»ýÃæÇÐȸ ÀÇÇпë¾î »çÀü °Ë»ö À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
´ëÇÑ»ýÈ­ÇкÐÀÚ»ý¹°ÇÐȸ ¿ë¾î »çÀü °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
KMLE ÀÇÇоà¾î »çÀü ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
KMLE ÀÚµ¿ÃßÃâ ÀÇÇоà¾î »çÀü ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
ÀÇÇÐ³í¹® ¾àÀÚ(Pubmed/Entrez) °Ë»ö ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
Çѱ¹Ç¥ÁØÁúº´»çÀκзù ¾àÀÚ ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ÄÚµå
    ¿µ¹®
    ÇѱÛ
Çѱ¹Ç¥ÁØÁúº´»çÀκзù ¾àÀÚ À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ÄÚµå
    ¿µ¹®
    ÇѱÛ
CancerWEB ¿µ¿µ ÀÇÇлçÀü ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
MeSH(Medical Subject Headings) ¸ÂÃã °Ë»ö (http://www.nlm.nih.gov) °á°ú : 0 ÆäÀÌÁö: 1
MeSH(Medical Subject Headings) À¯»ç °Ë»ö (http://www.nlm.nih.gov) °á°ú : 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - Merriam-Webster's ÀÇÇлçÀü ¸ÂÃã °Ë»ö (https://www.merriam-webster.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - Merriam-Webster's ÀÇÇлçÀü À¯»ç °Ë»ö (https://www.merriam-webster.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - A.D.A.M. Medical Encyclopedia ¸ÂÃã °Ë»ö (http://www.nlm.nih.gov) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - A.D.A.M. Medical Encyclopedia À¯»ç °Ë»ö (http://www.nlm.nih.gov) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - MedlinePlus Health Topics ¸ÂÃã °Ë»ö (http://www.nlm.nih.gov) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - MedlinePlus Health Topics À¯»ç °Ë»ö (http://www.nlm.nih.gov) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - µå·¯±×ÀÎÆ÷ ¾àÇÐ Á¤º¸ ¸ÂÃã °Ë»ö (http://www.druginfo.co.kr) °á°ú: 0 ÆäÀÌÁö: 1
Á¦Ç°¸í
ÆÇ¸Å»ç
º¸ÇèÄÚµå ¼ººÐ/ÇÔ·®
±¸ºÐ/º¸Çè±Þ¿©
¿ÜºÎ ¸µÅ© - µå·¯±×ÀÎÆ÷ ¾àÇÐ Á¤º¸ À¯»ç °Ë»ö (http://www.druginfo.co.kr) °á°ú: 0 ÆäÀÌÁö: 1
Á¦Ç°¸í
ÆÇ¸Å»ç
º¸ÇèÄÚµå ¼ººÐ/ÇÔ·®
±¸ºÐ/º¸Çè±Þ¿©
¿ÜºÎ ¸µÅ© - WebMD.com Drug Reference ¸ÂÃã °Ë»ö (http://www.webmd.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - WebMD.com Drug Reference À¯»ç °Ë»ö (http://www.webmd.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - Drug.com Drugs by Medical Condition ¸ÂÃã °Ë»ö (http://www.drugs.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - Drug.com Drugs by Medical Condition À¯»ç °Ë»ö (http://www.drugs.com) °á°ú: 0 ÆäÀÌÁö: 1
KMLE À¥ ¿ë¾î ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
KMLE À¥ ¿ë¾î À¯»ç °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
ÇÑ¿µ/¿µÇÑ »çÀü ¸ÂÃã °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
  • ¿µ¹®
    ÇѱÛ
WordNet ÀÏ¹Ý ¿µ¿µ »çÀü °Ë»ö °á°ú : 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - American Heritage Dictionary ¿µ¿µ»çÀü ¸ÂÃã °Ë»ö (https://www.ahdictionary.com) °á°ú: 0 ÆäÀÌÁö: 1
¿ÜºÎ ¸µÅ© - American Heritage Dictionary ¿µ¿µ»çÀü À¯»ç °Ë»ö (https://www.ahdictionary.com) °á°ú: 0 ÆäÀÌÁö: 1
ÅëÇÕ°Ë»ö ¿Ï·á